Selection

List of Papers Using AE/Dst/SYM/ASY Indices

Data Analysis Center for Geomagnetism and Space Magnetism, Graduate School of Science, Kyoto University

Peer-reviewed papers that use the geomagnetic indices produced by the WDC for Geomagnetism, Kyoto. 8,630 papers, 2002–2026, across 23 journals. Last updated August 2026.

Papers
8,630
Years
2002–2026
Journals
23
2025
690 papers
Papers per year

The current year is still incomplete and is left out of the plots.

Papers per index

AE covers the AE, AL, AU and AO indices, which Kyoto publishes together as the AE indices. A paper using several indices is counted under each.

    Journals searched
    JournalPublisherPapers
    Journal of Geophysical Research: Space PhysicsAGU3,656
    Advances in Space ResearchElsevier896
    Geophysical Research LettersAGU816
    Space WeatherAGU774
    Journal of Atmospheric and Solar-Terrestrial PhysicsElsevier566
    Annales GeophysicaeCopernicus550
    Earth, Planets and SpaceSpringer182
    Solar PhysicsSpringer181
    The Astrophysical JournalAAS165
    AtmosphereMDPI154
    Remote SensingMDPI152
    Space Science ReviewsSpringer95
    Radio ScienceAGU92
    Earth and Space ScienceAGU62
    Frontiers in Astronomy and Space SciencesFrontiers59
    Scientific ReportsNature55
    Planetary and Space ScienceElsevier45
    UniverseMDPI39
    Nonlinear Processes in GeophysicsCopernicus32
    Journal of Space Weather and Space ClimateEDP Sciences20
    The Astrophysical Journal LettersAAS19
    Nature CommunicationsNature18
    Geoscientific Instrumentation, Methods and Data SystemsCopernicus2

    2026 429 papers↑ top

    1. Aa, E., et al. (2026), Unusual Dawnside Storm-Enhanced Density and Coincident Neutral Tongue Structure During the 16 April 2025 Geomagnetic Storm, J. Geophys. Res. Space Physics, 131(7), e2026JA035036, doi:10.1029/2026ja035036.SYM-H
    2. Abraham, S. A., S. Antony, and C. P. Anil Kumar (2026), Study on Auroral electrojet index and Joule heating during solar cycle 23, Adv. Space Res., 78(1), 41, doi:10.1016/j.asr.2025.09.087.AESYM-H
    3. Adawa, I., Y. Otsuka, M. Abdelwahab, and A. Mahrous (2026), Global patterns of nighttime equatorial plasma depletion depth and longitudinal spread during low and moderate solar activity, Adv. Space Res., 78(1), 3, doi:10.1016/j.asr.2025.08.011.Dst
    4. Afolabi, O. O., C. M. N. Candido, F. Becker-Guedes, C. Amory-Mazaudier, and R. Fleury (2026), Interhemispheric and latitudinal variability of ionospheric disturbances during the 19–20 December 2015 geomagnetic storm: insights from the South American sector, Adv. Space Res., 78(1), 130, doi:10.1016/j.asr.2025.09.026.DstAESYM-H
    5. Ahmed, Q., A. Gupta, A. Singh, A. Rawat, A. Bhardwaj, P. Goel, and A. K. Upadhayaya (2026), Ionospheric precursors to earthquakes: insights from multiple events and global sensitivity analysis over the low–mid latitude region of New Delhi, India, Adv. Space Res., 78(4), 4041, doi:10.1016/j.asr.2026.06.026.Dst
    6. Akala, A. O., B. Olugbon, P. O. Amaechi, O. J. Oyedokun, J. A. Ayangbemi, E. O. Oyeyemi, and Y. Otsuka (2026), Storm-time hourly morphologies of Equatorial Ionization Anomaly (EIA) crests along 110–125°E meridian during 2013 St Patrick's Day geomagnetic storm, Adv. Space Res., 78(1), 103, doi:10.1016/j.asr.2025.11.068.DstSYM-H
    7. Akasofu, S.-I. (2026), An electric theory of auroral substorms: why do auroral substorms occur in the way they occur, Front. Astron. Space Sci., 13, 1790883, doi:10.3389/fspas.2026.1790883.AE
    8. Akasofu, S.-I. (2026), Explosive poleward advance of auroral activity in auroral substorms, J. Atmos. Sol.-Terr. Phys., 285, 106889, doi:10.1016/j.jastp.2026.106889.AE
    9. Akhoondzadeh, M. (2026), Investigation of LAI disturbances associated with the Shahid-Rajaee port explosion in Iran (April 26, 2025) using satellite data, Adv. Space Res., 77(2), 2543, doi:10.1016/j.asr.2025.10.078.Dst
    10. Almeida Santos Moraes, G., V. Klausner, L. L. Trigo, and J. A. do Espírito Santo Toledo (2026), Recurrent HSS/SIR forcing, CME activity, and F-region dynamics over Brazil: a wavelet-coherence study of August 2017, Adv. Space Res., 77(10), 10329, doi:10.1016/j.asr.2026.03.069.DstAE
    11. Amaechi, P. O., et al. (2026), Analysis of geomagnetically induced currents (GICs) during the May 2024 Gannon storm, Adv. Space Res., 78(5), 4867, doi:10.1016/j.asr.2026.06.055.AESYM-HSYM-D
    12. Anderson, P. C., S. Dey, C. Valladares, R. A. Heelis, and L. J. Paxton (2026), Low and Mid Latitude Ionospheric and Thermospheric Storm Dynamics During the September 2011 Geomagnetic Storm, J. Geophys. Res. Space Physics, 131(3), e2025JA034408, doi:10.1029/2025ja034408.DstAE
    13. Ardic, F., F. Arikan, and O. Arikan (2026), Reconstruction of ionospheric TEC maps using singular value decomposition in both space and time, Adv. Space Res., 78(1), 299, doi:10.1016/j.asr.2025.11.087.Dst
    14. Aryan, H., J. Bortnik, W. K. Tobiska, P. Mehta, B. Hogan, R. Siddalingappa, and H. Challa (2026), Enhanced Radiation Exposure of Airline Crew and Passengers During the May 2024 Geomagnetic Storm, J. Geophys. Res. Space Physics, 131(1), e2025JA034217, doi:10.1029/2025ja034217.DstAE
    15. Atıcı, R., and Z. Pala (2026), Machine Learning Models for Ionospheric foF2 Prediction: A Comparative Analysis, Radio Sci., 61(6), e2025RS008336, doi:10.1029/2025rs008336.Dst
    16. Augustine D'Awarave, A., and V. Panditi (2026), Statistical Study of Intense Geomagnetic Storms and Their Solar Origins over the Period 1996 – 2025, Sol. Phys., 301(6), 85, doi:10.1007/s11207-026-02666-6.DstSYM-H
    17. Bag, T., Y. Ogawa, V. Sivakumar, and S. Garg (2026), Prediction of thermospheric CO2 emission using Machine Learning Technique, Adv. Space Res., 77(3), 3499, doi:10.1016/j.asr.2025.11.070.SYM-H
    18. Bakim, S., and N. R. Cicek (2026), Probabilistic geomagnetic storm prediction for operational forecasting, Adv. Space Res., 77(12), 12409, doi:10.1016/j.asr.2026.03.104.DstAESYM-HASY-H
    19. Behailu, G., A. Mohammed, Y. Kassa, and M. W. Liemhon (2026), Ionospheric response to extreme geomagnetic storm (G5) of 10 May 2024 over the African Sector, Adv. Space Res., 77(4), 5168, doi:10.1016/j.asr.2025.11.105.Dst
    20. Belakhovsky, V. B., V. A. Pilipenko, V. N. Selivanov, Y. A. Sakharov, J. J. Zhang, and V. V. Kolobov (2026), The Extreme GIC Occurrence During 11 years of Observations in the North-West of Russia, Space Weather, 24(5), e2025SW004575, doi:10.1029/2025sw004575.AESYM-HSYM-D
    21. Bhardwaj, A., Q. Ahmed, A. Singh, A. Gupta, A. Rawat, P. Goel, G. Vichare, and A. K. Upadhayaya (2026), Ionospheric disturbances observed over Japanese and Indian region following the Tonga islands volcanic eruption on 15 January 2022, Adv. Space Res., 78(3), 2559, doi:10.1016/j.asr.2026.04.122.Dst
    22. Bhattacharyya, S., K. Venkatesh, D. Pallamraju, and D. Chakrabarty (2026), Quiet Time Enhancements and Decrements in the Day-to-Day TEC Variations Over the Indian Equatorial and Low Latitudes, J. Geophys. Res. Space Physics, 131(2), e2025JA034246, doi:10.1029/2025ja034246.SYM-H
    23. Black, R., O. Allanson, N. P. Meredith, A. Hillier, and D. P. Hartley (2026), Analysis of Chorus Wave Power on Burst-Mode Timescales During the Van Allen Probes Era, J. Geophys. Res. Space Physics, 131(5), e2026JA035082, doi:10.1029/2026ja035082.AE
    24. Boardsen, S. A., L. Chen, X. Wang, G. Reeves, F. Němec, and H. Chen (2026), Event Study of Cyclic Diffusion of the Proton Shell Distribution Associated With Quasi-Periodic Rising Tone Fast Magnetosonic Waves, J. Geophys. Res. Space Physics, 131(4), e2025JA034926, doi:10.1029/2025ja034926.Dst
    25. Borovsky, J. E., A. Runov, and J. M. Espinoza (2026), The correlations of energetic electron fluxes in the Earth's central plasma sheet with solar wind variables and geomagnetic indices, Front. Astron. Space Sci., 12, 1717916, doi:10.3389/fspas.2025.1717916.AE
    26. Borovsky, J. E., and C. W. Smith (2026), The "upstream turbulence effect" of the solar wind on the Earth's magnetosphere: Alfvénicity, magnetic-field fluctuations, and velocity fluctuations, Front. Astron. Space Sci., 13, 1830795, doi:10.3389/fspas.2026.1830795.AE
    27. Bower, G. E., S. M. Imber, S. E. Milan, C. Beggan, and J. W. Gjerloev (2026), Importance of High Cadence Magnetometer Data for Investigating Geomagnetic Disturbances, Space Weather, 24(6), e2026SW004959, doi:10.1029/2026sw004959.AE
    28. Brenner, A., T. I. Pulkkinen, E. F. M. T. São Sabbas, D. G. Sibeck, D. T. Welling, A. J. Ridley, V. S. Gowtam, and M. R. Hairston (2026), 10 May 2024 Gannon Storm: Connecting Energy Flux With Field Aligned Currents and Cross Polar Cap Potential, Space Weather, 24(3), e2025SW004776, doi:10.1029/2025sw004776.DstSYM-HSYM-D
    29. Brhian, A., M. A. Ridenti, F. Azpilicueta, M. Gende, and M. Roberto (2026), Enhancing Low-Latitude Ionospheric Irregularity Prediction With Generalized Linear Models, Space Weather, 24(3), e2024SW004243, doi:10.1029/2024sw004243.DstAE
    30. Budak, C. (2026), Two-stage modeling of ionospheric TEC for earthquake precursors: forecasting with LSTM, GRU, RNN and classification via Random Forest based on the 2023 Türkiye earthquakes, Adv. Space Res., 78(1), 279, doi:10.1016/j.asr.2025.12.018.Dst
    31. Bulbul, S., F. Basciftci, B. Bilgen, and E. Tekin Gok (2026), Examining the Super Intense Geomagnetic Storm on 10–11 May, 2024 via Artificial Neural Networks, Atmosphere, 17(3), 302, doi:10.3390/atmos17030302.DstSYM-H
    32. Bunting, K. A., N. P. Meredith, J. Bortnik, Q. Ma, R. Matsuura, and X. ‐. Shen (2026), Global Morphology of Chorus Waves in the Outer Radiation Belt and the Effect of Geomagnetic Activity and {f}_{pe}/{f}_{ce}, J. Geophys. Res. Space Physics, 131(2), e2025JA034737, doi:10.1029/2025ja034737.AE
    33. Burkholder, B., et al. (2026), The Range of Electron Plasma Temperature and Density at Lunar Orbit, Astrophys. J., 1007(2), 143, doi:10.3847/1538-4357/ae8f2f.SYM-H
    34. Cai, L., A. Aikio, G. P. Geethakumari, H. Vanhamäki, I. I. Virtanen, S. Oyama, Y. Zhang, J. Zhang, and M. Hairston (2026), Ionosphere-Thermosphere Coupling in the Northern Polar Region During the May 2024 Geomagnetic Superstorm, J. Geophys. Res. Space Physics, 131(2), e2025JA034495, doi:10.1029/2025ja034495.DstAESYM-H
    35. Cairns, I. H., A. G. Monger, and V. Arudselvan (2026), Space weather effects on the altitude of the CUAVA-1 CubeSat, Adv. Space Res., 78(4), 3788, doi:10.1016/j.asr.2026.05.086.Dst
    36. Cameron, T. G., K. W. Reiter, and R. A. D. Fiori (2026), Ionospheric Effects on Maximum Usable Frequency for a Cross-Auroral and a Polar Cap HF Radio Link, Radio Sci., 61(5), e2025RS008395, doi:10.1029/2025rs008395.AE
    37. Camilleri, T., M. Cervera, B. Ward, and A. MacKinnon (2026), Novel perturbation approach for inferring equatorial ionospheric vertical E× Bdrift velocity using ground-based magnetometers, Adv. Space Res., 78(2), 1389, doi:10.1016/j.asr.2026.05.008.DstSYM-H
    38. Cao, T., Y. Lu, J. Liu, and S. Li (2026), Strong Polar Ionospheric Electron Density Depletion Under Prolonged Northward IMF Bz Condition, Earth Space Sci., 13(3), e2025EA004673, doi:10.1029/2025ea004673.AESYM-H
    39. Caraballo, R., and L. S. Bettucci (2026), Estimating the 2024 Mother's Day magnetic storm impact on the Uruguayan power grid, Adv. Space Res., 77(4), 5138, doi:10.1016/j.asr.2025.11.102.Dst
    40. Carmo, C. S., et al. (2026), Space Weather Effects From Moderate to Severe Geomagnetic Storms in October 2024 Over the Latin American Sector, Space Weather, 24(6), e2025SW004760, doi:10.1029/2025sw004760.DstAE
    41. Chakraborty, S., and G. K. Seemala (2026), Ionospheric responses over the Antarctic region to intense space weather events: Plasma convection vs. auroral precipitation, Adv. Space Res., 77(2), 2602, doi:10.1016/j.asr.2025.10.107.SYM-H
    42. Chakraborty, S., M. D. Hartinger, X. Shi, D. H. Boteler, E. Lawrence, C. Boteler, J. B. H. Baker, and M. Macalester (2026), Validating SCUBAS Predictions of Geomagnetically Induced Voltage in Submarine Cables Using Legacy Superstorm Observations, Space Weather, 24(6), e2025SW004843, doi:10.1029/2025sw004843.AE
    43. Chandrasekhar, N. P., and D. Dwivedi (2026), Longitudinal variability of solar tides derived from ground magnetic observatories, J. Atmos. Sol.-Terr. Phys., 285, 106861, doi:10.1016/j.jastp.2026.106861.Dst
    44. Chen, C., L. Huang, W. Li, D. Chen, H. Zhang, Y. Lou, and L. Zhou (2026), A High-Efficiency Multivariable TEC-SOFTS Model for Ionospheric TEC Prediction: Validation Over China Area During Low and High Solar Activity Periods, Space Weather, 24(5), e2025SW004798, doi:10.1029/2025sw004798.Dst
    45. Chen, C.-H., et al. (2026), Doppler Frequency Shifts Associated With the 29 July 2025 M8.8 Kamchatka Earthquake in Southwest China, J. Geophys. Res. Space Physics, 131(4), e2025JA034917, doi:10.1029/2025ja034917.AE
    46. Chen, J., P. Xiong, H. Wu, X. Zhang, Y. Lin, T. Zhang, K. Wang, and Q. Ruan (2026), Study on the Ionospheric Response Mechanisms to Nocturnal Rocket Launches: Multi-Source GNSS Observational Evidence From the Long March 3B Case, J. Geophys. Res. Space Physics, 131(3), e2025JA034555, doi:10.1029/2025ja034555.Dst
    47. Chen, R., J. Yang, and Z. Huang (2026), Enhancing the reliability of Dst prediction interval with uncertainty matching technique using machine learning, Adv. Space Res., 78(2), 1485, doi:10.1016/j.asr.2026.04.070.Dst
    48. Chen, W., et al. (2026), Predicting Upper-Band Chorus Wave Amplitudes With Machine Learning: The Critical Role of Local Anisotropic Electron Fluxes, J. Geophys. Res. Space Physics, 131(7), e2026JA035191, doi:10.1029/2026ja035191.SYM-H
    49. Chen, X.-M., et al. (2026), Open Magnetic Field Lines Partition Auroral Oval Segments Into Transpolar Arcs, Geophys. Res. Lett., 53(11), e2025GL121403, doi:10.1029/2025gl121403.AE
    50. Cheng, P.-H., and Y. J. Morton (2026), Altitude and Latitude Dependence of Ionospheric Irregularities Observed by LEO POD During 2015–2025 Geomagnetic Storms, J. Geophys. Res. Space Physics, 131(7), e2026JA035432, doi:10.1029/2026ja035432.Dst
    51. Cheng, Z., et al. (2026), Direct Ionosonde Evidence of F-Layer Disturbances Driven by Intense Lightning Activity at Low Latitudes, Geophys. Res. Lett., 53(10), e2026GL122283, doi:10.1029/2026gl122283.DstAE
    52. Chernigovskaya, M. A., N. P. Perevalova, and A. G. Setov (2026), Detection of the main ionospheric trough using GNSS and ionosonde data, Adv. Space Res., 77(12), 12436, doi:10.1016/j.asr.2026.04.036.Dst
    53. Chernogor, L. F., and D. R. Kulyk (2026), Comprehensive study of space weather conditions during the September 11–21 2024 geospace storm. 1. The solar and magnetospheric storms, Adv. Space Res., 77(10), 10366, doi:10.1016/j.asr.2026.02.036.DstAESYM-HSYM-DASY-HASY-D
    54. Chernogor, L. F., and V. O. Bessarabova (2026), Global features of the multi-step ionospheric storm of September 11–21, 2024, Adv. Space Res., 77(3), 3443, doi:10.1016/j.asr.2025.11.049.AE
    55. Chernogors, L. F., and M. Y. Tkachenko (2026), Features of disturbances during November 4–5, 2023, multi-step geospace storm: comparative study of the "ionosphere-thermosphere" system response, Adv. Space Res., 77(9), 9704, doi:10.1016/j.asr.2026.03.012.DstSYM-HSYM-D
    56. Choi, B.-K., D.-H. Sohn, J.-K. Chung, and D.-J. Han (2026), Analysis of Ionospheric TEC and DCB Using GPS/Galileo Observations from a Moving Navy Training Ship, Atmosphere, 17(4), 423, doi:10.3390/atmos17040423.Dst
    57. Chou, M.-Y., et al. (2026), Assessment of Ionospheric Model Performance Over the US During the Extreme G5 2024 Mother's Day Geomagnetic Storm, Space Weather, 24(5), e2025SW004868, doi:10.1029/2025sw004868.DstAE
    58. Chougule, P., D. Shetti, K. Venkatesh, G. K. Seemala, and S. Chougule (2026), A study of the ionospheric response during intense geomagnetic storms over the Indian low-latitude region during the period 2017–2023, Adv. Space Res., 78(1), 154, doi:10.1016/j.asr.2025.09.088.DstSYM-H
    59. Chougule, P., et al. (2026), Peculiar Storm-Time Dynamics of the Summer Solstice Ionosphere over the Indian Region During the June 2025 Geomagnetic Storm, Atmosphere, 17(2), 189, doi:10.3390/atmos17020189.AESYM-HSYM-DASY-H
    60. Chulliat, A., M. Nair, and S. Califf (2026), Candidate geomagnetic field models for IGRF-14 and secular acceleration since 2020, Earth Planets Space, 78(1), 26, doi:10.1186/s40623-025-02362-y.Dst
    61. Colonna, R., K. Nayak, G. Sharma, and R. Romero-Andrade (2026), Evaluation of Seismo-Ionospheric and Seismological Parameters Within the Lithosphere–Atmosphere–Ionosphere Coupling Framework for the 2025 Mw 7.7 Myanmar Earthquake, Remote Sens., 18(7), 1016, doi:10.3390/rs18071016.Dst
    62. Condori, C. A. H., R. Ticona, P. Miranda, C. A. Guerrero, E. Romero-Hernández, E. Pérez-Tijerina, R. Raljevic, and M. Subieta-Vazques (2026), Effects of the May 10, 2024 solar storm on the South Atlantic Anomaly: a case study in Bolivia, Earth Planets Space, 78(1), 95, doi:10.1186/s40623-025-02345-z.Dst
    63. Coxon, J. C., et al. (2026), AMPERE Observations of the Asymmetry Toward Stronger Birkeland Currents in the Northern Hemisphere, J. Geophys. Res. Space Physics, 131(5), e2026JA035162, doi:10.1029/2026ja035162.DstAESYM-H
    64. Cui, Y., X. Fang, K. Zhang, G. Jin, and D. Bai (2026), The Altitudinal Profile of the Equatorial Ionization Anomaly Response to the Intense X9.3 Solar Flare on 6 September 2017, J. Geophys. Res. Space Physics, 131(7), e2026JA035365, doi:10.1029/2026ja035365.Dst
    65. David, T. W., C. M. Michael, E. O. Adetunji, D. M. Wright, A. T. Talabi, and A. E. Ajetunmobi (2026), Statistical analysis of ion upflow occurrence in relation to the upstream solar wind plasma parameters and terrestrial magnetic activity during the IPY-ESR 2007 observations, Adv. Space Res., 77(9), 9617, doi:10.1016/j.asr.2026.03.020.AESYM-H
    66. Davidson, K., Y. Nishimura, L. Lyons, E. Donovan, V. Angelopoulos, and N. Nishitani (2026), Observations of High-Resolution Two-Dimensional Ionospheric Flow Dynamics Associated With Poleward Boundary Intensifications, Geophys. Res. Lett., 53(8), e2025GL120760, doi:10.1029/2025gl120760.AESYM-H
    67. de Abreu, A. J., et al. (2026), Electrodynamics and ionospheric irregularities during intense geomagnetic storm that occurred in March 2024 over American and Antarctic sectors, Adv. Space Res., 78(2), 1427, doi:10.1016/j.asr.2026.04.052.DstAE
    68. De Michelis, P., E. Consolini, F. Giannattasio, and G. Consolini (2026), Intense Ground Magnetic Perturbations During the 2024 May and October Geomagnetic Storms, J. Geophys. Res. Space Physics, 131(3), e2025JA034945, doi:10.1029/2025ja034945.DstAESYM-H
    69. De Michelis, P., G. Pignatiello, E. Consolini, M. De Girolamo, and A. Siniscalchi (2026), Leveraging Legacy Broadband Magnetotelluric Data for Geoelectric Field Hazard Assessment in Southern Italy, Space Weather, 24(5), e2025SW004877, doi:10.1029/2025sw004877.DstSYM-H
    70. Demelash, S., and T. Kassa (2026), Characterizing ionospheric irregularities during geomagnetic storm of March, June and December 2015 over equatorial/low latitude regions of South American and East African Sectors, J. Atmos. Sol.-Terr. Phys., 285, 106895, doi:10.1016/j.jastp.2026.106895.DstSYM-H
    71. Deng, K., S. Wang, K. Huang, Z. Guo, and Y. Ma (2026), Responses of ionosphere over south China to some ICME- and CIR-driven storms in four different phases of solar cycle 24 and the associated disturbance electric field, Adv. Space Res., 77(9), 9733, doi:10.1016/j.asr.2026.02.079.DstAE
    72. Desta, E. T., S. Kumar, M. B. Moldwin, M.-C. Fok, E. Kebede, and T. Eritro (2026), Solar wind-driven magnetospheric current variability during 2013 storms: Ground and space observations, Adv. Space Res., 77(1), 1138, doi:10.1016/j.asr.2025.11.098.DstAESYM-HASY-H
    73. Di Matteo, S., A. W. Breneman, A. J. Halford, N. M. Viall, L. Kepko, K. Cantwell, and R. Millan (2026), Quasi-Periodic X-Ray Variations at BARREL: Role of Electron Precipitation and Solar Wind Driving, J. Geophys. Res. Space Physics, 131(7), e2026JA035242, doi:10.1029/2026ja035242.DstAE
    74. DiMarco, C. C., T. I. Pulkkinen, and M. G. Henderson (2026), Statistical and temporal characteristics of sawtooth events, Ann. Geophys., 44(1), 35, doi:10.5194/angeo-44-35-2026.DstAESYM-H
    75. DiMarco, C. C., T. I. Pulkkinen, R. L. McPherron, M. G. Henderson, and J. W. Gjerloev (2026), Comparative Dynamics of Substorms and Sawtooth Events, J. Geophys. Res. Space Physics, 131(6), e2026JA035415, doi:10.1029/2026ja035415.DstAESYM-H
    76. Dong, X., T. Yang, M. Sun, H. Li, Q. Zhu, and Y. Zhang (2026), Modeling Study on Energetic Particle Distribution in the Ionospheric South Atlantic Anomaly at Height of the Space Station, Space Weather, 24(4), e2025SW004689, doi:10.1029/2025sw004689.DstAESYM-H
    77. Drastichová, K., F. Němec, J. Manninen, and T. Raita (2026), Influence of Geomagnetically Induced Currents on Power Line Harmonic Radiation Observed at the Kannuslehto Ground-Based Station, J. Geophys. Res. Space Physics, 131(6), e2025JA034610, doi:10.1029/2025ja034610.Dst
    78. Du, W., J. Zhong, X. Wan, Y. Hao, C. Xiong, Y. Liu, X. Meng, Z. Zhou, and J. Zhao (2026), Storm-Time Strip-Like Plasma Density Bulges at Middle Latitudes Shaped by Meridional Wind Gradients, J. Geophys. Res. Space Physics, 131(2), e2025JA034786, doi:10.1029/2025ja034786.SYM-H
    79. Du, Y., et al. (2026), Counter-Streaming Inverted-V Ion Structures Observed by Arase, J. Geophys. Res. Space Physics, 131(5), e2026JA035125, doi:10.1029/2026ja035125.SYM-H
    80. Dubey, N., Swati, D. Pundhir, D. Singh, and R. P. Singh (2026), Latitudinal and longitudinal variability of ionospheric TEC responses to the severe geomagnetic storm of May 10-11, 2024, J. Atmos. Sol.-Terr. Phys., 281, 106767, doi:10.1016/j.jastp.2026.106767.DstAE
    81. Dubyagin, S., N. Ganushkina, A. Sicard, J. ‐. Matéo‐Vélez, L. Monnin, D. Heynderickx, P. Jiggens, G. Deprez, and F. Cipriani (2026), On the Possibility of Driving the Electron Flux Probabilistic Models by the AE Index, J. Geophys. Res. Space Physics, 131(2), e2025JA033880, doi:10.1029/2025ja033880.AE
    82. Dujakovich, A., et al. (2026), Exploring a Terrestrial X-Ray Source and Auroral Emissions Using NICER, J. Geophys. Res. Space Physics, 131(2), e2025JA034213, doi:10.1029/2025ja034213.AESYM-H
    83. Ellahouny, N. M., A. T. Aikio, I. I. Virtanen, H. Vanhamäki, L. Cai, M. N. Pedersen, and H. W. Tesfaw (2026), Statistical Characteristics of Electron Precipitation During HSS- and ICME-Driven Storms Observed by the EISCAT Radar, J. Geophys. Res. Space Physics, 131(2), e2025JA034429, doi:10.1029/2025ja034429.DstSYM-H
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    417. Zheng, Y., C. Xiong, G. Mi, Y. Zhao, Z. Zhu, A. Smirnov, and R. Yan (2026), Flagged data of the Langmuir probes onboard Swarm satellites related extremely low plasma density environment, Adv. Space Res., 78(1), 400, doi:10.1016/j.asr.2025.10.114.Dst
    418. Zheng, Y., C. Xiong, X. Rang, S. Gao, and X. Li (2026), Merging and Dissipation of Intense Equatorial Plasma Bubbles With Large-Scale Mid-Latitude Low Electron Density Regions During the 23–24 April 2023 Geomagnetic Storm, J. Geophys. Res. Space Physics, 131(1), e2025JA033744, doi:10.1029/2025ja033744.SYM-H
    419. Zhong, Y., K. Zhang, L. Tang, Y. Yu, and C. Xu (2026), Global Variations in GNSS-TEC During Storm Time Substorms on 23 December 2014, Remote Sens., 18(12), 1923, doi:10.3390/rs18121923.AESYM-HASY-H
    420. Zhou, H., J. Yang, Y. Li, X. Li, T. Qing, M. Xia, and Z. Luo (2026), Orbital Decay Prediction in Low Earth Orbit: Integrating Along-Track Density Observations With Machine Learning, J. Geophys. Res. Space Physics, 131(3), e2025JA034593, doi:10.1029/2025ja034593.Dst
    421. Zhou, P., X. Meng, J. Chen, and J. Lei (2026), Statistical Properties of Dayside Single-Crest Structure of the Equatorial Ionization Anomaly Derived From Global Ionospheric Maps, Space Weather, 24(7), e2026SW005097, doi:10.1029/2026sw005097.Dst
    422. Zhou, W., D. Zhao, K. Zhang, and C. M. Hancock (2026), MSRU-Transformer: A Multi-Scale Receptive-Field Model with Skip Connections for Global Ionospheric TEC Prediction, Adv. Space Res., 78(5), 4954, doi:10.1016/j.asr.2026.06.069.Dst
    423. Zhou, W., J. Ren, L. Li, Y. Yu, L. Ma, and X. Liu (2026), Imprints of Electric Field Models on Wedge-Like Ion Structures: Comparing SWMF, Weimer05, and Volland-Stern in the Inner Magnetosphere, J. Geophys. Res. Space Physics, 131(7), e2026JA035319, doi:10.1029/2026ja035319.AE
    424. Zhou, X., X. Gao, D. Wang, J. Ma, and Q. Lu (2026), Uncovering the Generation Mechanism of Low-Frequency Chorus Waves (<0.1 {\boldsymbol{f}}_{\mathbf{c}\mathbf{e}\mathbf&_slash;\mathbf{e}\mathbf{q}}) During Active Geomagnetic Environments, Geophys. Res. Lett., 53(3), e2025GL119944, doi:10.1029/2025gl119944.AESYM-H
    425. Zhu, K., J. Sang, X. Li, L. Liu, Y. Qian, and S. Xia (2026), Applying Hpo Indices to Empirical Thermospheric Density Models During Geomagnetic Storms, Earth Space Sci., 13(2), e2025EA004454, doi:10.1029/2025ea004454.Dst
    426. Zhu, Q., S. Vines, M. Hairston, Y. Chen, P. Anderson, C. Sheng, and Y. Deng (2026), High-Latitude Electrodynamics and Thermospheric Density Variations During the 2024 Gannon Storm, Space Weather, 24(2), e2025SW004699, doi:10.1029/2025sw004699.SYM-H
    427. Zorkun, N. G., M. H. Mutevelli Oncul, S. Karatay, F. Erken, and C. Budak (2026), Identification of the ionospheric disturbances prior to large earthquakes in Türkiye using Random Forests algorithm, Adv. Space Res., 78(1), 263, doi:10.1016/j.asr.2025.06.080.Dst
    428. Zou, J., X. Li, J. Xu, Z. Ren, J. He, and J. Cao (2026), SIFT-Based Estimation of Zonal Drift Velocity in Equatorial Plasma Bubbles Using GOLD Observations, J. Geophys. Res. Space Physics, 131(1), e2025JA034498, doi:10.1029/2025ja034498.Dst
    429. Øieroset, M., et al. (2026), Simultaneous TRACERS and THEMIS Observations of Reversed Cusp Ion Dispersions and Dual-Lobe Reconnection, Geophys. Res. Lett., 53(13), e2026GL123404, doi:10.1029/2026gl123404.Dst

    2025 690 papers↑ top

    1. Aa, E., S.-R. Zhang, A. J. Coster, M. R. Hairston, R. B. Kerr, J. R. Souza, X. Cai, and B. Luo (2025), Super Equatorial Plasma Bubbles and Strong Longitudinal Variability During the 10–11 October 2024 Geomagnetic Storm, J. Geophys. Res. Space Physics, 130(8), e2025JA034224, doi:10.1029/2025ja034224.SYM-H
    2. Abadi, P., et al. (2025), Post-Sunrise Ionospheric Irregularities in Southeast Asia During the Geomagnetic Storm on 19–20 April 2024, Remote Sens., 17(16), 2906, doi:10.3390/rs17162906.AE
    3. Abaidoo, S., V. Klausner, C. M. N. Candido, V. G. Pillat, S. Pires de Moraes Santos Ribeiro Godoy, F. Becker-Guedes, J. A. D. E. S. Toledo, and L. L. Trigo (2025), CIR-Driven Geomagnetic Storm and High-Intensity Long-Duration Continuous AE Activity (HILDCAA) Event: Effects on Brazilian Equatorial and Low-Latitude Ionosphere—Observations and Modeling, Atmosphere, 16(5), 499, doi:10.3390/atmos16050499.DstAE
    4. Abdelaziz, A., X. Ren, X. Le, C. Jinyuan, D. Mei, J. Zhang, and X. Zhang (2025), Ionospheric disturbances over the American sector during the May 2024 solar storm: flares and geomagnetic effects (May 9–15), Adv. Space Res., 76(12), 7390, doi:10.1016/j.asr.2025.10.023.DstSYM-H
    5. Abunina, M. A., N. S. Shlyk, A. V. Belov, S. M. Belov, and A. A. Abunin (2025), On the features of great Forbush effect during May 2024 extreme geomagnetic storm, Adv. Space Res., 76(12), 7578, doi:10.1016/j.asr.2025.03.007.Dst
    6. Adebayo, O. M., B. Rabiu, A. A. Pimenta, A. C.-L. Chian, O. Dare-Idowu, D. I. Okoh, and A. Akerele (2025), First results of ionospheric plasma blob observations in the African topside ionosphere during a deep solar minimum using Swarm satellites, Front. Astron. Space Sci., 12, 1648901, doi:10.3389/fspas.2025.1648901.Dst
    7. Adebayo, O. M., E. A. Kherani, A. A. Pimenta, and B. Rabiu (2025), Pre-seismic ionospheric disturbances (PIDs) associated With 2021 Mw 7.5 Northern Peru earthquake: GNSS and ground uplift observations, J. Atmos. Sol.-Terr. Phys., 277, 106644, doi:10.1016/j.jastp.2025.106644.Dst
    8. Adhya, P., E. Spencer, and M. Kayode-Adeoye (2025), Substorm Identification With the WINDMI Magnetosphere - Ionosphere Nonlinear Physics Model, Space Weather, 23(2), 2024SW003960, doi:10.1029/2024sw003960.AE
    9. Agyei-Yeboah, E., P. R. Fagundes, A. Tardelli, V. G. Pillat, F. Vieira, and M. J. A. Bolzan (2025), Global ionospheric response to a G2 and a G3 geomagnetic storms of November 4 and 5 2023, Adv. Space Res., 75(7), 5580, doi:10.1016/j.asr.2025.01.046.Dst
    10. Ahmad, N., L. O. M. M. Kilowasid, H. Fakhrurroja, Neflia, A. Rachman, A. Husin, and H. Fathoni (2025), How geomagnetic storms affect the loss of Starlink satellites in February 2022?, Earth Planets Space, 77(1), 2, doi:10.1186/s40623-024-02124-2.DstAE
    11. Ahmad, U., W. Younas, M. Khan, and M. M. Abbasi (2025), Longitudinal Variations in the Ionospheric Disturbances: Insights From the May 2024 Super Storm, J. Geophys. Res. Space Physics, 130(7), e2025JA033981, doi:10.1029/2025ja033981.SYM-HASY-H
    12. Ai, X.-Y., J. Ren, Q.-G. Zong, Y.-X. Hao, Z.-J. Feng, and T.-Y. Xiang (2025), Joint Observations of Plasmapause Surface Waves and Giant Undulations in the Electron Aurora, J. Geophys. Res. Space Physics, 130(6), e2025JA033878, doi:10.1029/2025ja033878.DstAESYM-H
    13. Ajakaiye, M. P., B. Romano, and Y. Reuveni (2025), Imprints of Intense Geomagnetic Storm on Very Low Frequency (VLF) Radio Waves Over the Mediterranean Region, J. Geophys. Res. Space Physics, 130(7), e2025JA033796, doi:10.1029/2025ja033796.DstSYM-H
    14. Akasofu, S.-I., A. T. Y. Lui, and L.-C. Lee (2025), Synthesizing auroral substorm processes based on magnetosphere-ionosphere electric currents, Front. Astron. Space Sci., 12, 1521520, doi:10.3389/fspas.2025.1521520.AE
    15. Alemu, Z., and T. Kassa (2025), Investigation of equatorial plasma bubble irregularities under quiet and disturbed geomagnetic conditions over the East African longitudinal sector in 2015, Adv. Space Res., 75(4), 3671, doi:10.1016/j.asr.2024.12.012.Dst
    16. Amaechi, P. O., H. Messanga, F. O. Grodji, A. Akala, I. Despirak, C. M. Ngwira, E. Oyeyemi, and C. Amory-Mazaudier (2025), Risk Assessment of the Ground Magnetic Response to the March and April 2023 Geomagnetic Storms Using Geomagnetically Induced Currents Indices, Space Weather, 23(4), e2024SW004324, doi:10.1029/2024sw004324.DstAESYM-HSYM-D
    17. Ambili, K. M., R. K. Choudhary, A. Ashok, A. Potdar, C. Vineeth, and T. K. Pant (2025), The Impact of 11 May 2024 Great Geomagnetic Storm on the Plasma Distribution Over the Indian Equatorial/Low Latitude Ionospheric Region, J. Geophys. Res. Space Physics, 130(4), e2024JA033368, doi:10.1029/2024ja033368.DstAE
    18. Amin, E. A., A. M. K. Shaltout, A. G. A. Abdelkawy, M. M. Beheary, R. Abdelhamid, and A. Shimeis (2025), The influence of solar activity on geomagnetic disturbances over cycles 23 and 24, Adv. Space Res., 75(8), 6553, doi:10.1016/j.asr.2025.02.030.DstAE
    19. Ang, D. J., S. M. Buhari, M. Abdullah, and S. A. Bahari (2025), The Effects of Solar Flares and Geomagnetic Storm on the Upper and Lower Ionosphere Across the Malay Archipelago Between 8th and 15th May 2024, J. Geophys. Res. Space Physics, 130(4), e2024JA033601, doi:10.1029/2024ja033601.Dst
    20. Apatenkov, S. V., D. Bryzhakhina, A. V. Artemyev, X. He, and A. Mao (2025), Multi-Spacecraft Observation of a Quasi-Stationary Tail Current Sheet, J. Geophys. Res. Space Physics, 130(8), e2025JA033940, doi:10.1029/2025ja033940.AE
    21. Artemyev, A. V., et al. (2025), Coupling Between Earth's Magnetotail and the Outer Radiation Belt via Field-Line Curvature Scattering, J. Geophys. Res. Space Physics, 130(7), e2025JA034184, doi:10.1029/2025ja034184.AE
    22. Arutyunyan, S., A. Kodukov, M. Subbotin, and D. Pavlov (2025), MHD Forecasting of Solar Wind With Coronal Mass Ejections, Space Weather, 23(12), e2025SW004403, doi:10.1029/2025sw004403.Dst
    23. Ashok, A., K. M. Ambili, and R. K. Choudhary (2025), Do the Vertical Movements of the Peak Height of F Region Truly Represent the Vertical \mathbf{E}× \mathbf{B} Plasma Drift Velocity Over the Dip Equator?, J. Geophys. Res. Space Physics, 130(1), 2024JA033202, doi:10.1029/2024ja033202.Dst
    24. Ashok, A., K. M. Ambili, R. K. Choudhary, and G. Lu (2025), Unique Signatures of Meridional Wind Variations on the Electron Density Distribution Over the Dip Equator, Geophys. Res. Lett., 52(18), e2025GL117926, doi:10.1029/2025gl117926.AE
    25. Astafyeva, E., B. Maletckii, I. D. Ouar, M. Förster, D. R. Themens, J. D. Huba, M. R. Hairston, W. R. Coley, and M.-C. H. Fok (2025), An Extraordinary Dayside Negative Ionospheric Storm of 11 May 2024 and Total Electron Content (TEC) Vortices, J. Geophys. Res. Space Physics, 130(12), e2025JA034571, doi:10.1029/2025ja034571.SYM-HSYM-D
    26. Astafyeva, E., B. Maletckii, M. Förster, I. D. Ouar, J. D. Huba, M. R. Hairston, and W. R. Coley (2025), Electrodynamic and Ionospheric Puzzles of the 10–11 May 2024 Geomagnetic Superstorm, J. Geophys. Res. Space Physics, 130(5), e2024JA033284, doi:10.1029/2024ja033284.SYM-H
    27. Bag, T., and V. Singh (2025), The Mother's Day Storm of 2024 Triggered the Strongest Nighttime Radiative Emission of the SABER Era, Geophys. Res. Lett., 52(20), e2025GL118286, doi:10.1029/2025gl118286.SYM-HSYM-D
    28. Bai, D., Y. Fu, C. Yang, K. Zhang, and Y. Cui (2025), The Poleward Shift of the Equatorial Ionization Anomaly During the Main Phase of the Superstorm on 10 May 2024, Remote Sens., 17(15), 2616, doi:10.3390/rs17152616.Dst
    29. Bakota, M., I. Jelaska, S. Kos, and D. Brčić (2025), Statistical Approach to Research on the Relationship Between Kp/Dst Geomagnetic Indices and Total GPS Position Error, Remote Sens., 17(14), 2374, doi:10.3390/rs17142374.Dst
    30. Barad, R. K., S. Sripathi, R. Singh, B. Gayathri, and P. Abadi (2025), Observations and Modeling Investigations of Ionospheric Response to 23-24 April 2023, G4-Class Geomagnetic Storm Over Indian Sector, Space Weather, 23(6), e2024SW004253, doi:10.1029/2024sw004253.SYM-H
    31. Barik, K. C., and C. C. Chaston (2025), Broadband Kinetic Alfvén Waves and the Pitch Angle Distribution of Relativistic Electrons, Geophys. Res. Lett., 52(10), e2025GL115046, doi:10.1029/2025gl115046.DstAESYM-H
    32. Beedle, J. M. H., et al. (2025), MMS Observations of a Compressed, Strongly Driven Magnetopause During the 2024 Mother's Day Storm, Geophys. Res. Lett., 52(24), e2025GL118368, doi:10.1029/2025gl118368.AESYM-H
    33. Belyuchenko, K. V., M. V. Klimenko, V. V. Klimenko, K. G. Ratovsky, and A. M. Vesnin (2025), Statistical and modeling study of the response of high-latitude regional electron content to a reference geomagnetic storm, Adv. Space Res., 75(6), 4850, doi:10.1016/j.asr.2024.12.076.DstAE
    34. Benjamin, J. O., D. I. Okoh, and B. A. Rabiu (2025), Global comparison of instantaneous electron density latitudinal profiles from SWARM satellites and IRI model, Adv. Space Res., 75(8), 6454, doi:10.1016/j.asr.2025.02.023.Dst
    35. Berényi, K. A., V. Barta, C. Szárnya, A. Buzás, and B. Heilig (2025), Subauroral and Auroral Conditions in the Mid- and Low-Midlatitude Ionosphere over Europe During the May 2024 Mother's Day Superstorm, Remote Sens., 17(14), 2492, doi:10.3390/rs17142492.DstAE
    36. Bezerra, L. D. S., P. S. de Oliveira, and C. P. Krueger (2025), Performance analysis of multi-GNSS PPP under the effects of extreme geomagnetic event: A case study of Mother's Day solar storm (10–15 May 2024), Adv. Space Res., 76(12), 7308, doi:10.1016/j.asr.2025.06.036.SYM-H
    37. Bhattacharjee, S., et al. (2025), Contrasting Low-Latitude Ionospheric Total Electron Content Responses to the 7–8 and 10–11 October 2024 Geomagnetic Storms, Atmosphere, 16(12), 1364, doi:10.3390/atmos16121364.AESYM-H
    38. Birch, M. J. (2025), A model to estimate energy deposition within the geomagnetosphere using Dst as a proxy for the Akasofu ϵ parameter, J. Atmos. Sol.-Terr. Phys., 270, 106480, doi:10.1016/j.jastp.2025.106480.AE
    39. Bishop, T., L. Blum, X. Chu, and N. Maruyama (2025), A Superposed Epoch Analysis of Two Stage Refilling in the Plasmasphere, Geophys. Res. Lett., 52(11), e2024GL114582, doi:10.1029/2024gl114582.DstAE
    40. Biswas, S., A. Bhaskar, A. Raghav, A. Kumar, K. Ghag, S. V. Thampi, and V. K. Yadav (2025), Pinching of ICME Flux Rope: Unprecedented Multipoint Observations of Internal Magnetic Reconnection during Gannon's Superstorm, Astrophys. J. Lett., 991(1), L15, doi:10.3847/2041-8213/adfe60.AESYM-HASY-H
    41. Biswas, T., A. Paul, and S. Haldar (2025), Response of equatorial ionosphere to the geomagnetic superstorm of May 2024: Observations from the Indian longitudes, Adv. Space Res., 76(12), 7489, doi:10.1016/j.asr.2025.09.022.Dst
    42. Blanchfield, E. J., B. A. Carter, J. L. Currie, J. M. Weygand, and G. N. Iles (2025), Thermospheric Density Disturbances During the 2015 St. Patrick's Day Geomagnetic Storm: Model–Observation Comparisons and Analysis of Intense Polar Density Spikes, Space Weather, 23(10), e2025SW004472, doi:10.1029/2025sw004472.DstSYM-H
    43. Boroyev, R. N. (2025), Impact of solar wind parameters on geomagnetic activity during the main phase of strong magnetic storms, J. Atmos. Sol.-Terr. Phys., 269, 106485, doi:10.1016/j.jastp.2025.106485.DstAE
    44. Bortnik, J., L. Chen, X.-J. Zhang, and N. P. Meredith (2025), Evolution of dayside chorus into nightside plasmaspheric hiss, Front. Astron. Space Sci., 12, 1619877, doi:10.3389/fspas.2025.1619877.DstAE
    45. Bower, G. E., S. E. Milan, S. Imber, A. Schillings, A. Fleetham, C. Beggan, and J. W. Gjerloev (2025), Asymmetry in the Ring Current During Geomagnetic Disturbances, J. Geophys. Res. Space Physics, 130(3), 2024JA033492, doi:10.1029/2024ja033492.AE
    46. Bozóki, T., and B. Heilig (2025), Spatial Distribution of Pc1/EMIC Waves Relative to the Nightside Ionospheric Footprint of the Plasmapause, J. Geophys. Res. Space Physics, 130(2), 2024JA033385, doi:10.1029/2024ja033385.Dst
    47. Brenner, A., T. I. Pulkkinen, and M. W. Liemohn (2025), Solar Wind-Magnetosphere Coupling Under Interim Steady Conditions, J. Geophys. Res. Space Physics, 130(7), e2025JA033771, doi:10.1029/2025ja033771.SYM-H
    48. Brindley, N., M. Madhanakumar, A. Spicher, D. Whiter, K. Oksavik, and Y. Ogawa (2025), Intense Dynamic Optical Auroral Sub-Structure as a Proxy for Ionospheric Density Irregularities, J. Geophys. Res. Space Physics, 130(11), e2025JA033999, doi:10.1029/2025ja033999.AE
    49. Burkholder, B. L., L.-J. Chen, D. Lin, S. K. Vines, K. A. Sorathia, and C. F. Bowers (2025), Field-Aligned Currents and Auroral Precipitation During the Terrestrial Alfvén Wing State, Geophys. Res. Lett., 52(12), e2025GL115910, doi:10.1029/2025gl115910.SYM-H
    50. Cafolla, M. A., S. C. Chapman, N. W. Watkins, X. Meng, and O. P. Verkhoglyadova (2025), Dynamics of TEC High Density Regions Seen in JPL GIMs: Variations With Latitude, Season and Geomagnetic Activity, Space Weather, 23(4), e2024SW004307, doi:10.1029/2024sw004307.Dst
    51. Cai, X., et al. (2025), Concurrent GOLD and SABER Observations of Thermosphere Composition and Temperature Responses to the April 23–24, 2023 Geomagnetic Storm, J. Geophys. Res. Space Physics, 130(4), e2025JA033912, doi:10.1029/2025ja033912.Dst
    52. Can, Z., and H. Ş. Erdağ (2025), Effect of Solar Parameters on Geomagnetic Storm Formation in the Ascending Phase of the 25th Solar Cycle, Sol. Phys., 300(2), 20, doi:10.1007/s11207-025-02427-x.Dst
    53. Cao, T., J. Liu, S. Li, and K. Zhang (2025), Subauroral Polarization Streams Effects on the Low-Latitude Ionosphere During the Geomagnetic Storm on 17 March 2015, J. Geophys. Res. Space Physics, 130(1), 2024JA033050, doi:10.1029/2024ja033050.AESYM-H
    54. Capannolo, L., et al. (2025), Statistical Properties of Solar Wind Parameters Driving Relativistic Electron Precipitation, J. Geophys. Res. Space Physics, 130(12), e2025JA034548, doi:10.1029/2025ja034548.Dst
    55. Carnevale, G., M. Regi, S. Lepidi, and P. Francia (2025), On the Relationship Between Solar Wind High-Speed Stream Waves and Geomagnetic Pc5 Activity From Mid to High Latitudes: A Case Study on January 5-12 2008, J. Geophys. Res. Space Physics, 130(4), e2024JA033645, doi:10.1029/2024ja033645.AE
    56. Carrasco, V. M. S., and J. M. Vaquero (2025), A Forgotten Aurora: Revisiting the 19 March 1950 Aurora Australis Through Historical Records, Atmosphere, 16(5), 615, doi:10.3390/atmos16050615.Dst
    57. Cha, H., J. Goldstein, D. Kataria, Y. Nishimura, and K. Ogasawara (2025), The spatiotemporal development of the midlatitude troughs and subauroral ion drift during a geomagnetic storm observed by multiple DMSP satellites, Earth Planets Space, 78(1), 14, doi:10.1186/s40623-025-02349-9.DstAE
    58. Chakali, R. S., and V. R. Devanaboyina (2025), Comparative assessment of GNSS ionospheric broadcast models during the May 10, 2024 geomagnetic storm event, Adv. Space Res., 76(12), 7272, doi:10.1016/j.asr.2025.09.069.Dst
    59. Chakali, R. S., and V. R. Devanaboyina (2025), Performance evaluation of GNSS single-frequency ionospheric TEC fusion model during May 2024 geomagnetic storm event, Adv. Space Res., 76(12), 7290, doi:10.1016/j.asr.2025.06.082.Dst
    60. Chakraborty, S., C. E. J. Watt, I. J. Rae, I. R. Mann, L. Olifer, A. W. Smith, J.-F. Ripoll, and C. J. Rodger (2025), The Effect of Intense Chorus Waves on the Storm-Time Outer Radiation Belt Relativistic Electron Dynamics, J. Geophys. Res. Space Physics, 130(8), e2025JA033741, doi:10.1029/2025ja033741.DstAESYM-H
    61. Chakraborty, S., D. Chakrabarty, A. K. Yadav, and G. K. Seemala (2025), Influence of ICME-driven magnetic cloud-like and sheath region induced geomagnetic storms in causing anomalous responses of the low-latitude ionosphere: A case study, Adv. Space Res., 75(6), 4714, doi:10.1016/j.asr.2024.12.045.DstSYM-H
    62. Chakraborty, S., I. R. Mann, L. Olifer, R. Black, O. Allanson, I. J. Rae, L. G. Ozeke, and C. E. J. Watt (2025), Diagnosing the Rapid Loss of Outer Radiation Belt Electrons Due To Strong Chorus-Driven Wave-Particle Interactions Along an Electron Injection Path, J. Geophys. Res. Space Physics, 130(8), e2025JA034045, doi:10.1029/2025ja034045.AESYM-HSYM-D
    63. Chakraborty, S., N. Nishitani, X. Shi, P. Ponomarenko, J. M. Ruohoniemi, J. B. H. Baker, A. J. Coster, and I. Häggström (2025), Solar Flare Induced Gradient Drift Instability Observed by SuperDARN HF Radars, J. Geophys. Res. Space Physics, 130(10), e2025JA033824, doi:10.1029/2025ja033824.AESYM-HSYM-D
    64. Chand, A. E., A. J. Ridley, G. Bowden, and M. Brown (2025), Effects of Proton Precipitation in Global Ionosphere Thermosphere Model During the 17 March 2013 Geomagnetic Storm, J. Geophys. Res. Space Physics, 130(10), e2025JA033935, doi:10.1029/2025ja033935.Dst
    65. Chang, H., Y. J. Morton, J. Brandmeyer, and D. R. Themens (2025), Analysis of Ionospheric Response to the May 2024 Geomagnetic Superstorm Using Commercial Radio Occultation Satellites and Ground-Based Instruments, J. Geophys. Res. Space Physics, 130(12), e2025JA034517, doi:10.1029/2025ja034517.SYM-H
    66. Chang, H., Y. J. Morton, T. Dittmann, D. Hunt, T. Durgonics, J. Braun, and J.-P. Weiss (2025), Assessment of Scintillation Data From PlanetiQ and Spire Global Radio Occultation Missions, J. Geophys. Res. Space Physics, 130(3), 2024JA033543, doi:10.1029/2024ja033543.Dst
    67. Chelpanov, A., and M. Chelpanov (2025), Empirical mode decomposition application to magnetic field variations in the magnetosphere, Adv. Space Res., 76(6), 3647, doi:10.1016/j.asr.2025.06.066.SYM-H
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    656. Zhang, X., G. Pi, Z. Němeček, J. Šafránková, T. Wang, W. Kong, C. Wei, and N. Yu (2025), Modeling and Risk Assessment of Geomagnetically Induced Currents During Geomagnetic Storm in the 500 kV Power Grid of Guangxi, China, Space Weather, 23(11), e2025SW004646, doi:10.1029/2025sw004646.SYM-H
    657. Zhang, X., T. Xie, Q. Ye, L. Yan, and X. Wu (2025), Severe Distortion of the Apparent Resistivity Induced by the Super Geomagnetic Storm in May 2024, Geophys. Res. Lett., 52(8), e2025GL115104, doi:10.1029/2025gl115104.Dst
    658. Zhang, X.-J., et al. (2025), Relativistic and Ultra-Relativistic Electron Bursts in Earth's Magnetotail Observed by Low-Altitude Satellites, Geophys. Res. Lett., 52(2), 2024GL113280, doi:10.1029/2024gl113280.AE
    659. Zhang, Y., et al. (2025), Strong thermospheric response to the almost undetectable substorm on May 29, 2023, J. Atmos. Sol.-Terr. Phys., 268, 106430, doi:10.1016/j.jastp.2025.106430.DstAE
    660. Zhang, Y., J. W. Gjerloev, L. J. Paxton, R. Schaefer, and M. Friel (2025), A ground state of the geospace on November 6–7, 2009, J. Atmos. Sol.-Terr. Phys., 277, 106659, doi:10.1016/j.jastp.2025.106659.AE
    661. Zhang, Y., M. Ou, L. Chen, Y. Hao, Q. Zhu, X. Dong, and W. Zhen (2025), Machine Learning-Based Estimation of foF2 and MUF(3000)F2 Using GNSS Ionospheric TEC Observations, Remote Sens., 17(10), 1764, doi:10.3390/rs17101764.Dst
    662. Zhang, Y., P. B. Dandenault, L. J. Paxton, R. Schaefer, C. Cantrall, H. Kil, R. Mesquita, and M. E. Zuber (2025), Variability in the thermospheric neutral mass density: A multiple model comparison, J. Atmos. Sol.-Terr. Phys., 277, 106630, doi:10.1016/j.jastp.2025.106630.Dst
    663. Zhang, Z., et al. (2025), The Magnetosphere-Ionosphere-Ground Responses to the May 2024 Super Solar Storm, Space Weather, 23(4), e2024SW004197, doi:10.1029/2024sw004197.Dst
    664. Zhang, Z., W. Liu, and D. Zhang (2025), Statistical Study of Convection Electric Field in the Inner Magnetosphere Responding to the Southward Turnings of Interplanetary Magnetic Field, J. Geophys. Res. Space Physics, 130(12), e2025JA034663, doi:10.1029/2025ja034663.AESYM-HSYM-D
    665. Zhao, B., et al. (2025), Simultaneous Observation of Duskside and Dawnside Subauroral Polarization Streams During an Intense Magnetic Storm, Geophys. Res. Lett., 52(17), e2024GL114160, doi:10.1029/2024gl114160.DstAESYM-HSYM-D
    666. Zhao, D., et al. (2025), The Performance of DIXSG on Characterizing Global and Regional Ionospheric Disturbances Utilizing Geodetic Receiver Network A Case Study, Space Weather, 23(10), e2024SW004209, doi:10.1029/2024sw004209.DstAE
    667. Zhao, H., H. Yang, X. Chen, Z. Xing, Z. Hu, D. Huang, B. Li, B. Zhang, and J. Liu (2025), Magnetospheric and ionospheric vortices response to positive solar wind dynamic pressure pulse, Front. Astron. Space Sci., 12, 1679345, doi:10.3389/fspas.2025.1679345.AESYM-H
    668. Zhao, H., H. Yang, Z. Hu, D. Huang, B. Li, B. Zhang, and J. Liu (2025), Magnetospheric and ionospheric vortices response to negative solar wind dynamic pressure pulse, Front. Astron. Space Sci., 12, 1679376, doi:10.3389/fspas.2025.1679376.AESYM-H
    669. Zhao, L.-X., et al. (2025), A Regional 3-D Data Assimilation Model for the Ionospheric Electron Density at Middle-to-High Latitudes in the Northern Hemisphere, Space Weather, 23(5), e2025SW004340, doi:10.1029/2025sw004340.DstAESYM-H
    670. Zhao, M.-X., and G.-M. Le (2025), Dependence of SYMH Change Rate on Dynamic Pressure during the Main Phases of Storms: A Comparative Analysis of the 2024 May and 2003 November Superstorms, Astrophys. J., 978(2), 157, doi:10.3847/1538-4357/ada15c.SYM-H
    671. Zhao, M.-X., and G.-M. Le (2025), Direct Observational Evidence of Solar Wind Density Controlling the Evolution of the Ring Current During the 2024 October Major Storm, Sol. Phys., 300(9), 124, doi:10.1007/s11207-025-02539-4.DstSYM-H
    672. Zhao, Y., et al. (2025), Cross-Calibrated FY-4A and GOES-15 Data for >2 MeV Electron Flux Prediction at Geosynchronous Orbit: A Machine Learning Approach, Space Weather, 23(11), e2025SW004419, doi:10.1029/2025sw004419.Dst
    673. Zhao, Y., H. Zhu, H. Chen, Z. Qin, and Z. She (2025), ULF Wave-Driven Energization of Plasmaspheric Plume Ions During Multi-Step Geomagnetic Storms, J. Geophys. Res. Space Physics, 130(9), e2025JA034430, doi:10.1029/2025ja034430.DstAE
    674. Zhong, J., K. Wu, Z. Zou, J. Xu, L. Sun, and W. Yuan (2025), Statistical Analysis of Machine Learning-Derived Equatorial Plasma Bubble Characteristics From Airglow Observations in Southern China During a Solar Cycle, Space Weather, 23(11), e2025SW004536, doi:10.1029/2025sw004536.Dst
    675. Zhong, J., Z. Zou, K. Wu, J. Xu, Y. Lu, L. Sun, Q. Li, and W. Yuan (2025), Automatic Detection and Feature Extraction of Equatorial Plasma Bubbles From All-Sky Airglow Image Based on Machine Learning, Space Weather, 23(5), e2025SW004336, doi:10.1029/2025sw004336.Dst
    676. Zhou, J., H. Cai, X. Yan, H.-W. Xu, K. Hu, and C. Xiong (2025), ED-Autoformer: A New Model for Precise Global TEC Forecast, Space Weather, 23(6), e2025SW004356, doi:10.1029/2025sw004356.DstSYM-H
    677. Zhou, M., Z. H. Zhong, L. J. Song, X. J. Ou, R. X. Tang, X. H. Deng, and Y. Pang (2025), Cold Ion Energization by Secondary Magnetic Reconnection in a Turbulent Reconnection Jet During Storm Period, Geophys. Res. Lett., 52(3), 2024GL112230, doi:10.1029/2024gl112230.Dst
    678. Zhou, R., H. Liu, H. Le, J. Xiao, Y. Ma, J. Yuan, W. Shan, and M. Wang (2025), CSA-WTConvLSTM: A TEC Spatiotemporal Prediction Model Focusing on Both Low-Frequency and High-Frequency Features, Space Weather, 23(8), e2025SW004338, doi:10.1029/2025sw004338.Dst
    679. Zhou, R., X. J. Zhang, A. V. Artemyev, D. Mourenas, and V. Angelopoulos (2025), Effects of Strong Diffusion and Wave Ducting on Electron Losses Estimated by the Quasi Linear Approach, J. Geophys. Res. Space Physics, 130(10), e2025JA034117, doi:10.1029/2025ja034117.AE
    680. Zhou, R., X.-J. Zhang, A. V. Artemyev, D. Mourenas, and V. Angelopoulos (2025), Characteristics of Energy-Latitude Dispersed Electron Precipitation Driven by EMIC Waves, J. Geophys. Res. Space Physics, 130(4), e2024JA033501, doi:10.1029/2024ja033501.AESYM-H
    681. Zhou, R., X.-J. Zhang, D. Mourenas, and A. V. Artemyev (2025), Upper Limit on Radiation Belt Electron Fluxes Controlled by a Self-Consistent Feedback From Chorus Waves, J. Geophys. Res. Space Physics, 130(8), e2025JA034116, doi:10.1029/2025ja034116.AE
    682. Zhou, S., Y. Cai, S. Li, Z. Wu, and Y. Hou (2025), Perpendicular acceleration of near-equatorially mirroring protons by electromagnetic ion cyclotron (EMIC) waves, Adv. Space Res., 76(9), 5658, doi:10.1016/j.asr.2025.08.018.DstSYM-H
    683. Zhou, X., et al. (2025), Ionospheric Day-to-Day Variability Driven by Nonlinear Interactions Between the Terdiurnal Tide and Planetary Waves Under Magnetospheric Modulation, Geophys. Res. Lett., 52(23), e2025GL119445, doi:10.1029/2025gl119445.Dst
    684. Zhou, X., X. Gao, Q. Lu, R. Hajra, and J. Ma (2025), Response of Electric Field Pulse and Particle Dynamics in Earth's Magnetosphere to Enhanced Solar Wind Dynamic Pressure With Varied IMF Directions: A Statistical Study, J. Geophys. Res. Space Physics, 130(7), e2024JA033701, doi:10.1029/2024ja033701.SYM-HSYM-D
    685. Zhou, Y.-J., et al. (2025), Giant Undulations Driven by Pitch-Angle Scattering of Time Domain Structures Modulated by Plasmapause Surface Wave, Geophys. Res. Lett., 52(3), 2024GL111782, doi:10.1029/2024gl111782.DstAE
    686. Zhou, Y.-J., et al. (2025), Penetration of Plasmapause Surface Waves Into the Plasmaspheric Plume, J. Geophys. Res. Space Physics, 130(7), e2024JA033690, doi:10.1029/2024ja033690.AE
    687. Zhu, M., L. Dai, Y. Ren, X. Wang, T. Wang, K. Wang, and C. Wang (2025), Response of Magnetospheric Convection to the Southward Turning of the IMF in Fast and Slow Solar Wind Streams, J. Geophys. Res. Space Physics, 130(11), e2025JA034529, doi:10.1029/2025ja034529.Dst
    688. Zhu, Y., C. Xiong, Y. Ji, F. Tang, S. Wang, and F. Wang (2025), Influence of monoenergetic and broadband aurora on SAR imaging: A case study, Adv. Space Res., 76(7), 3815, doi:10.1016/j.asr.2025.03.054.AESYM-H
    689. Zoennchen, J. H., and G. Cucho-Padin (2025), The response of exospheric neutral hydrogen to weak geomagnetic disturbances between June 12 and 29, 2008, Front. Astron. Space Sci., 12, 1536249, doi:10.3389/fspas.2025.1536249.Dst
    690. Zulhamidi, N. F. I., M. Abdullah, N. S. Abdul Hamid, K. A. Yusof, S. A. Bahari, and S. Perwitasari (2025), A comprehensive study of geomagnetic and TEC disturbances in relation to M ⩾ 5.0 earthquakes, Adv. Space Res., 76(5), 2837, doi:10.1016/j.asr.2025.06.076.Dst

    2024 572 papers↑ top

    1. Aa, E., S.-R. Zhang, J. Lei, F. Huang, P. J. Erickson, A. J. Coster, and B. Luo (2024), Significant Midlatitude Plasma Density Peaks and Dual-Hemisphere SED During the 10–11 May 2024 Super Geomagnetic Storm, J. Geophys. Res. Space Physics, 129(11), 2024JA033360, doi:10.1029/2024ja033360.AESYM-H
    2. Aa, E., S.-R. Zhang, P. J. Erickson, W. Wang, A. J. Coster, and W. Rideout (2024), 3-D Ionospheric Imaging Over the South American Region With a New TEC-Based Ionospheric Data Assimilation System (TIDAS-SA), Space Weather, 22(2), e2023SW003792, doi:10.1029/2023sw003792.SYM-H
    3. Aa, E., S.-R. Zhang, S. Zou, W. Wang, Z. Wang, X. Cai, P. J. Erickson, and A. J. Coster (2024), Significant Midlatitude Bubble-Like Ionospheric Super-Depletion Structure (BLISS) and Dynamic Variation of Storm-Enhanced Density Plume During the 23 April 2023 Geomagnetic Storm, Space Weather, 22(3), e2023SW003704, doi:10.1029/2023sw003704.SYM-H
    4. Aa, E., Y. Chen, and B. Luo (2024), Dynamic Expansion and Merging of the Equatorial Ionization Anomaly During the 10-11 May 2024 Super Geomagnetic Storm, Remote Sens., 16(22), 4290, doi:10.3390/rs16224290.Dst
    5. Abduallah, Y., K. A. Alobaid, J. T. L. Wang, H. Wang, V. K. Jordanova, V. Yurchyshyn, H. Cavus, and J. Jing (2024), Prediction of the SYM-H Index Using a Bayesian Deep Learning Method With Uncertainty Quantification, Space Weather, 22(2), e2023SW003824, doi:10.1029/2023sw003824.DstSYM-HASY-H
    6. Abubakar, S., D. Okoh, B. I. Tijjani, and R. S. Said (2024), Speed and accuracy investigations of neural network algorithms for ionospheric modelling at an equatorial region, J. Atmos. Sol.-Terr. Phys., 265, 106365, doi:10.1016/j.jastp.2024.106365.Dst
    7. Acciarini, G., E. Brown, T. Berger, M. Guhathakurta, J. Parr, C. Bridges, and A. G. Baydin (2024), Improving Thermospheric Density Predictions in Low-Earth Orbit With Machine Learning, Space Weather, 22(2), e2023SW003652, doi:10.1029/2023sw003652.DstAESYM-HSYM-DASY-HASY-D
    8. Adewuyi, M., A. Keesee, and B. Ferdousi (2024), Merging Mesoscale Magnetotail Features and Ground B-Field Perturbation Network Connectivity During Substorm Activity, J. Geophys. Res. Space Physics, 129(9), e2024JA032598, doi:10.1029/2024ja032598.DstAE
    9. Afolabi, O. O., C. M. N. Candido, F. Becker-Guedes, and C. Amory-Mazaudier (2024), Study and Modelling of the Impact of June 2015 Geomagnetic Storms on the Brazilian Ionosphere, Atmosphere, 15(5), 597, doi:10.3390/atmos15050597.AESYM-H
    10. Ahmed, J., M. Shah, T. Iqbal, M. A. Shah, and A. Amin (2024), Study of the ionospheric precursors associated with M w ≥6.0EQ from Ionosonde Stations and GIM TEC, J. Atmos. Sol.-Terr. Phys., 256, 106205, doi:10.1016/j.jastp.2024.106205.Dst
    11. Ahmed, O., B. Badruddin, and M. Derouich (2024), Characteristics and development of the main phase disturbance in geomagnetic storms (Dst ⩽ - 50 nT), Adv. Space Res., 73(9), 4453, doi:10.1016/j.asr.2024.01.050.DstAESYM-H
    12. Aksen, U., Ü. D. Göker, E. Timoçin, Ç. Akçay, and M. İpek (2024), The effect of geomagnetic storms on aircraft accidents between the years 1919-2023 in civil aviation, Adv. Space Res., 73(1), 807, doi:10.1016/j.asr.2023.11.008.Dst
    13. Aksonova, K. D., A. O. Sopin, D. Burešová, A. V. Zalizovski, and I. F. Domnin (2024), Synchronous observations of traveling ionospheric disturbances by the multipoint Doppler sounding, ionosonde and the incoherent scatter radar: Case study, Adv. Space Res., 73(9), 4414, doi:10.1016/j.asr.2024.01.032.AE
    14. Al Shidi, Q., T. I. Pulkkinen, D. Welling, and G. Toth (2024), Accuracy of Global Geospace Simulations: Influence of Solar Wind Monitor Location and Solar Wind Driving, Space Weather, 22(4), e2023SW003747, doi:10.1029/2023sw003747.DstAESYM-HSYM-D
    15. Ala-Lahti, M., T. I. Pulkkinen, A. Brenner, T. Keebler, Q. Al Shidi, S. Hill, and D. Welling (2024), The Impact of Solar Wind Magnetic Field Fluctuations on the Magnetospheric Energetics, Geophys. Res. Lett., 51(24), 2024GL112922, doi:10.1029/2024gl112922.AESYM-H
    16. Alemu, G. B., and Y. G. Ejigu (2024), Prediction of ionospheric total electron content over low latitude region: Case study in Ethiopia, Adv. Space Res., 74(1), 284, doi:10.1016/j.asr.2024.03.062.DstAE
    17. Alobaid, K. A., J. T. L. Wang, H. Wang, J. Jing, Y. Abduallah, Z. Wang, H. Farooki, H. Cavus, and V. Yurchyshyn (2024), Prediction of Geoeffective CMEs Using SOHO Images and Deep Learning, Sol. Phys., 299(11), 159, doi:10.1007/s11207-024-02385-w.DstAESYM-HASY-H
    18. Alqeeq, S. W., D. Fontaine, O. Le Contel, M. Akhavan Tafti, E. Cazzola, T. Atilaw, V. Angelopoulos, and H. U. Auster (2024), Global Compression of the Plasma Sheet and Magnetotail During Intense Storms From THEMIS Observations, J. Geophys. Res. Space Physics, 129(9), e2024JA032888, doi:10.1029/2024ja032888.DstSYM-HSYM-D
    19. Anagnostopoulos, G., et al. (2024), Ground Electric Field, Atmospheric Weather and Electric Grid Variations in Northeast Greece Influenced by the March 2012 Solar Activity and the Moderate to Intense Geomagnetic Storms, Remote Sens., 16(6), 998, doi:10.3390/rs16060998.DstSYM-H
    20. Anderson, P. C., and A. L. Bukowski (2024), Magnetic Local Time and Interplanetary Magnetic Field By Variation of Cusp Location Dependence on Dipole Tilt, J. Geophys. Res. Space Physics, 129(2), e2023JA031886, doi:10.1029/2023ja031886.AE
    21. Anoke-Uzosike, R., A. O. Akala, and E. O. Oyeyemi (2024), Sub-daily solar wind-magnetosphere energy transfer during major geomagnetic storms of solar cycle 23, Adv. Space Res., 73(8), 4314, doi:10.1016/j.asr.2024.01.007.DstAESYM-H
    22. Ansari, K., J. Walo, S. Sagir, and K. Wezka (2024), Empirical orthogonal function based modelling of ionosphere using Turkish GNSS network, J. Atmos. Sol.-Terr. Phys., 261, 106294, doi:10.1016/j.jastp.2024.106294.DstAE
    23. Ansari, K., S. Kumar Panda, V. Kavutarapu, and P. Jamjareegulgarn (2024), Towards mitigating the effect of plasma bubbles on GPS positioning accuracy through wavelet transformation over Southeast Asian region, Adv. Space Res., 73(7), 3642, doi:10.1016/j.asr.2023.04.041.Dst
    24. Aol, S., V. Habyarimana, P. Mungufeni, S. C. Buchert, and J. B. Habarulema (2024), Ground and Space-based response of the ionosphere during the geomagnetic storm of 02-06 November 2021 over the low-latitudes across different longitudes, Adv. Space Res., 73(6), 3014, doi:10.1016/j.asr.2023.12.032.DstSYM-H
    25. Arslan Tariq, M., L. Liu, M. Shah, Y. Yang, W. Sun, M. Ali Shah, R. Zhang, and A. Yoshikawa (2024), Longitudinal variations of ionospheric responses to the February and April 2023 geomagnetic storms over American and Asian sectors, Adv. Space Res., 73(6), 3033, doi:10.1016/j.asr.2023.12.039.DstASY-H
    26. Artemyev, A. V., V. A. Sergeev, V. Angelopoulos, X.-J. Zhang, and C. Wilkins (2024), Categorization of Electron Isotropy Boundary Patterns: ELFIN and POES Observations, J. Geophys. Res. Space Physics, 129(12), 2024JA033231, doi:10.1029/2024ja033231.Dst
    27. Artemyev, A., Y. Nishimura, V. Angelopoulos, X.-J. Zhang, and J. Bortnik (2024), Rapid Transport of Energetic Electrons to Low L-Shells: The Key Role of Electric Fields, J. Geophys. Res. Space Physics, 129(10), e2024JA033136, doi:10.1029/2024ja033136.AE
    28. Asamoah, E. N., M. Cafaro, I. Epicoco, G. D. Franceschi, and C. Cesaroni (2024), A stacked machine learning model for the vertical total electron content forecasting, Adv. Space Res., 74(1), 223, doi:10.1016/j.asr.2024.04.055.DstAE
    29. Ashna, V. M., A. Bhaskar, G. Manju, and R. Sini (2024), Solar Wind-Magnetosphere Coupling Efficiency and Its Dependence on Solar Activity During Geomagnetic Storms of 23-24 Solar Cycles, J. Geophys. Res. Space Physics, 129(8), e2023JA031687, doi:10.1029/2023ja031687.DstSYM-H
    30. Asmare Tariku, Y. (2024), Pattern of variation of TEC, hmF2 and foF2, and their correlation during the geomagnetic storm time conditions, J. Atmos. Sol.-Terr. Phys., 262, 106325, doi:10.1016/j.jastp.2024.106325.DstAE
    31. Atabati, A., I. Jazireeyan, M. Alizadeh, and R. B. Langley (2024), Prediction of Ionospheric Scintillation with ConvGRU Networks Using GNSS Ground-Based Data across South America, Remote Sens., 16(15), 2757, doi:10.3390/rs16152757.Dst
    32. Atilaw, T. Y., et al. (2024), Magnetospheric Time-History in Storm-Time Magnetic Flux Dynamics: A Global Simulation Campaign, J. Geophys. Res. Space Physics, 129(5), e2023JA031997, doi:10.1029/2023ja031997.DstSYM-H
    33. Babu, S. S., I. R. Mann, E. F. Donovan, A. W. Smith, S. Dimitrakoudis, R. D. Sydora, and A. Kale (2024), Plasma Sheet Counterparts for Auroral Beads and Vortices in Advance of Fast Flows: New Evidence for Near-Earth Substorm Onset, J. Geophys. Res. Space Physics, 129(6), e2023JA031957, doi:10.1029/2023ja031957.DstAE
    34. Bag, T., and Y. Ogawa (2024), Enhanced response of thermospheric cooling emission to negative pressure pulse, Sci. Rep., 14, 9647, doi:10.1038/s41598-024-60471-2.AESYM-H
    35. Bag, T., and Y. Ogawa (2024), Impact of interplanetary shock on nitric oxide cooling emission: A superposed epoch study, Adv. Space Res., 74(11), 6012, doi:10.1016/j.asr.2024.08.005.AESYM-H
    36. Bag, T., and Y. Ogawa (2024), Response Time of Joule Heating Rate and Nitric Oxide Cooling Emission During Geomagnetic Storms: Correlated Ground-Based and Satellite Observations, J. Geophys. Res. Space Physics, 129(2), e2023JA032072, doi:10.1029/2023ja032072.AESYM-H
    37. Bag, T., R. Barman, S. A. Das, V. Sivakumar, and V. Singh (2024), Nitric oxide cooling emission during geomagnetic storm: Case studies, Adv. Space Res., 73(1), 747, doi:10.1016/j.asr.2023.09.064.AESYM-HSYM-D
    38. Bag, T., V. Sivakumar, and Y. Ogawa (2024), Impact of Interplanetary Shock on Thermospheric Cooling Emission: A Case Study, J. Geophys. Res. Space Physics, 129(10), e2024JA033176, doi:10.1029/2024ja033176.AESYM-H
    39. Bag, T., Y. Ogawa, and V. Sivakumar (2024), Thermospheric NO Cooling During 2003 October "Halloween Storm": Revisited, J. Geophys. Res. Space Physics, 129(7), e2024JA032805, doi:10.1029/2024ja032805.DstSYM-HSYM-D
    40. Balan, N., Q.-H. Zhang, S. T. Ram, K. Shiokawa, V. Manu, and Z.-Y. Xing (2024), How to identify and forecast severe space weather events, J. Atmos. Sol.-Terr. Phys., 256, 106183, doi:10.1016/j.jastp.2024.106183.DstAE
    41. Balasis, G., A. De Santis, C. Papadimitriou, A. Z. Boutsi, G. Cianchini, O. Giannakis, S. M. Potirakis, and M. Mandea (2024), Swarm Investigation of Ultra-Low-Frequency (ULF) Pulsation and Plasma Irregularity Signatures Potentially Associated with Geophysical Activity, Remote Sens., 16(18), 3506, doi:10.3390/rs16183506.Dst
    42. Banyś, D., J. Feltens, N. Jakowski, J. Berdermann, M. M. Hoque, R. Zandbergen, and W. Enderle (2024), A new model for plasmapause locations derived from IMAGE RPI and Van Allen Probes data, J. Space Weather Space Clim., 14, 36, doi:10.1051/swsc/2024016.Dst
    43. Barad, R. K., S. Sripathi, S. Banola, and K. Vijaykumar (2024), Occurrence of Equatorial Plasma Bubbles (EPBs) Over the Indian Region on 15 January 2022 and Their Plausible Connection to the Tonga Volcano Eruption, J. Geophys. Res. Space Physics, 129(6), e2023JA031542, doi:10.1029/2023ja031542.Dst
    44. Barani, M., A. R. Poppe, M. O. Fillingim, J. P. McFadden, J. S. Halekas, and D. G. Sibeck (2024), A Study of Ionospheric Heavy Ions in the Terrestrial Magnetotail Using ARTEMIS, J. Geophys. Res. Space Physics, 129(6), e2023JA032346, doi:10.1029/2023ja032346.DstSYM-H
    45. Barde, V., J. Bulusu, and A. P. Dimri (2024), Long-term geomagnetic activities and stratospheric winter temperature, J. Atmos. Sol.-Terr. Phys., 265, 106361, doi:10.1016/j.jastp.2024.106361.DstAE
    46. Baruah, Y., S. Roy, S. Sinha, E. Palmerio, S. Pal, D. M. Oliveira, and D. Nandy (2024), The Loss of Starlink Satellites in February 2022: How Moderate Geomagnetic Storms Can Adversely Affect Assets in Low-Earth Orbit, Space Weather, 22(4), e2023SW003716, doi:10.1029/2023sw003716.Dst
    47. Belov, S. M., N. S. Shlyk, M. A. Abunina, A. V. Belov, A. A. Abunin, V. A. Oleneva, and V. G. Yanke (2024), On the Most Interesting Solar-Wind and Cosmic-Ray Events in February–April 2023, Sol. Phys., 299(12), 164, doi:10.1007/s11207-024-02406-8.Dst
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    556. Zhang, Z., et al. (2024), Relativistic Electron Flux Decay and Recovery: Relative Roles of EMIC Waves, Chorus Waves, and Electron Injections, J. Geophys. Res. Space Physics, 129(12), 2024JA033174, doi:10.1029/2024ja033174.Dst
    557. Zhao, D., et al. (2024), Analysis of global ionospheric scintillation and GPS positioning interference triggered by full-halo CME-driven geomagnetic storm: A case study, Adv. Space Res., 74(5), 2492, doi:10.1016/j.asr.2024.06.001.DstSYM-HSYM-D
    558. Zhao, F., et al. (2024), Investigation on the Impact of the 2022 Luding M6.8 Earthquake on Regional Low-Frequency Time Code Signals in Northern China, Atmosphere, 15(12), 1419, doi:10.3390/atmos15121419.DstAE
    559. Zhao, X., J. Wang, M. Zhao, Y. D. Liu, H. Hu, M. Liu, T. Mao, and Q. Zong (2024), Establishment and Application of an Interplanetary Disturbance Index Based on the Solar Wind–Magnetosphere Energy Coupling Function and the Spectral Whitening Method, Astrophys. J., 970(2), 133, doi:10.3847/1538-4357/ad5000.DstAE
    560. Zheng, J., J. Huang, Z. Li, W. Li, Y. Han, H. Lu, and Z. Zhima (2024), Multiple-Band Electric Field Response to the Geomagnetic Storm on 4 November 2021, Remote Sens., 16(18), 3497, doi:10.3390/rs16183497.DstSYM-H
    561. Zhou, S., X. Luan, and Y. Hou (2024), Multiple Satellite Observations of the High-Latitude Cusp Aurora During Northward IMF Conditions, J. Geophys. Res. Space Physics, 129(8), e2024JA032963, doi:10.1029/2024ja032963.AESYM-H
    562. Zhou, S., X. Luan, Z. Zhou, and Z. Wu (2024), Nightside Detached Auroras Associated With Expanding Auroral Oval During the Main and Recovery Phases of a Magnetic Storm, J. Geophys. Res. Space Physics, 129(8), e2024JA032906, doi:10.1029/2024ja032906.DstAESYM-HSYM-D
    563. Zhou, S., Y. Cai, P. Ou, L. Zhu, and D. Wu (2024), On the formation of postnoon auroral bright spots during weak substorm activity, Adv. Space Res., 73(6), 3087, doi:10.1016/j.asr.2023.12.058.AESYM-H
    564. Zhou, W., Y. Yuan, C. Tang, Y. Meng, and Y. Chen (2024), Ionosphere disturbances on GNSS signal and positioning performance: Analysis of the solar flare and geomagnetic storm events in September 2017 and October 2021, Adv. Space Res., 73(9), 4608, doi:10.1016/j.asr.2024.01.044.Dst
    565. Zhou, Y., et al. (2024), Simultaneous Occurrence of Electromagnetic and Quasi-Electrostatic Magnetosonic Waves, J. Geophys. Res. Space Physics, 129(10), e2024JA032967, doi:10.1029/2024ja032967.SYM-H
    566. Zhou, Y., J. Liu, S. Li, and Q. Li (2024), Ionospheric TEC Prediction Based on Ensemble Learning Models, Space Weather, 22(3), e2023SW003790, doi:10.1029/2023sw003790.DstAE
    567. Zhou, Y.-J., F. He, M. O. Archer, X.-X. Zhang, Y. X. Hao, Z.-H. Yao, Z. Rong, and Y. Wei (2024), Spatial Evolution Characteristics of Plasmapause Surface Wave During a Geomagnetic Storm on 16 July 2017, Geophys. Res. Lett., 51(8), e2024GL109371, doi:10.1029/2024gl109371.AESYM-H
    568. Zhou, Y.-J., F. He, X.-X. Zhang, Y.-L. Zhang, L. Liu, Z.-H. Yao, Z. Rong, and Y. Wei (2024), Special Particle Precipitation Signatures Over Giant Auroral Undulations During the 7 September 2015 Geomagnetic Storm, Geophys. Res. Lett., 51(14), e2024GL109849, doi:10.1029/2024gl109849.AE
    569. Zhu, Q., G. Lu, S. Vines, and M. Hairston (2024), Interhemispheric Asymmetry in the High-Latitude Neutral Density Variations During the 13-14 March 2022 Storm, Space Weather, 22(11), 2024SW004084, doi:10.1029/2024sw004084.SYM-H
    570. Zhuang, Y., et al. (2024), The Excitation of Second Harmonic Poloidal ULF Waves Through Drift-Bounce Resonance With Protons in the Magnetic Dip, J. Geophys. Res. Space Physics, 129(11), 2024JA032804, doi:10.1029/2024ja032804.SYM-H
    571. Zou, Y., X.-J. Zhang, A. V. Artemyev, Y. Shen, and V. Angelopoulos (2024), The Key Role of Magnetic Curvature Scattering in Energetic Electron Precipitation During Substorms, Geophys. Res. Lett., 51(14), e2024GL109227, doi:10.1029/2024gl109227.AE
    572. Özsöz, İ., O. A. Pamukçu, and E. Timoçin (2024), Time-dependent magnetic anomaly variations in Turkey and Greece using swarm satellites: A comprehensive precursory multi-track analysis of M≥6 earthquakes from 2017 to 2020, J. Atmos. Sol.-Terr. Phys., 258, 106210, doi:10.1016/j.jastp.2024.106210.Dst

    2023 541 papers↑ top

    1. Aa, E., S.-R. Zhang, P. J. Erickson, W. Wang, L. Qian, X. Cai, A. J. Coster, and L. P. Goncharenko (2023), Significant Mid- and Low-Latitude Ionospheric Disturbances Characterized by Dynamic EIA, EPBs, and SED Variations During the 13-14 March 2022 Geomagnetic Storm, J. Geophys. Res. Space Physics, 128(8), e2023JA031375, doi:10.1029/2023ja031375.DstSYM-H
    2. Aa, E., S.-R. Zhang, W. Wang, P. J. Erickson, and A. J. Coster (2023), Multiple Longitude Sector Storm-Enhanced Density (SED) and Long-Lasting Subauroral Polarization Stream (SAPS) During the 26-28 February 2023 Geomagnetic Storm, J. Geophys. Res. Space Physics, 128(9), e2023JA031815, doi:10.1029/2023ja031815.DstAE
    3. Abe, O. E., M. O. Fakomiti, W. N. Igboama, O. O. Akinola, O. Ogunmodimu, and Y. O. Migoya-Orué (2023), Statistical analysis of the occurrence rate of geomagnetic storms during solar cycles 20-24, Adv. Space Res., 71(5), 2240, doi:10.1016/j.asr.2022.10.033.DstAE
    4. Adebayo, M. O., A. A. Pimenta, S. Savio, and P. K. Nyassor (2023), Airglow Imaging Observations of Plasma Blobs: Merging and Bifurcation during Solar Minimum over Tropical Region, Atmosphere, 14(3), 514, doi:10.3390/atmos14030514.Dst
    5. Adekoya, B. J., V. U. Chukwuma, S. J. Adebiyi, B. O. Adebesin, S. O. Ikubanni, O. S. Bolaji, H. T. Oladunjoye, and O. O. Bisuga (2023), Ionospheric storm effects in the EIA region in the American and Asian-Australian sectors during geomagnetic storms of October 2016 and September 2017, Adv. Space Res., 72(4), 1237, doi:10.1016/j.asr.2023.04.016.SYM-H
    6. Aderaw, B., and M. Nigussie (2023), Studying the Day-To-Day Effect of F Region Meridional Neutral Wind on the Formation of Post-Sunset Equatorial Ionospheric Irregularities, J. Geophys. Res. Space Physics, 128(8), e2022JA031048, doi:10.1029/2022ja031048.Dst
    7. Adhya, P., and C. E. Valladares (2023), Magnetic Storm Effects on the Occurrence and Characteristics of Plasma Bubbles, J. Geophys. Res. Space Physics, 128(11), e2023JA031292, doi:10.1029/2023ja031292.SYM-H
    8. Ai, J., Y. Li, X. Zhang, C. Xiao, G. Chen, X. Zheng, and Z. Zhang (2023), Study on the Hemispheric Asymmetry of Thermospheric Density Based on In-Situ Measurements from APOD Satellite, Atmosphere, 14(4), 714, doi:10.3390/atmos14040714.DstAE
    9. Akala, A. O., R. O. Afolabi, and Y. Otsuka (2023), Responses of the African-European equatorial-, low-, mid-, and high-latitude ionosphere to geomagnetic storms of 2013, 2015 St Patrick's Days, 1 June 2013, and 7 October 2015, Adv. Space Res., 72(3), 775, doi:10.1016/j.asr.2022.10.029.AE
    10. Akhavan-Tafti, M., T. Y. Atilaw, D. Fontaine, O. Le Contel, J. A. Slavin, and T. Pulkkinen (2023), Magnetospheric Time History in Storm-Time Magnetic Flux Dynamics, J. Geophys. Res. Space Physics, 128(9), e2023JA031832, doi:10.1029/2023ja031832.DstSYM-H
    11. Akhmetov, O. I., V. B. Belakhovsky, I. V. Mingalev, O. V. Mingalev, A. V. Larchenko, and Z. V. Suvorova (2023), About the Propagation of RSDN-20 "Alpha" Signals in the Earth-Ionosphere Waveguide During Geomagnetic Disturbances, Radio Sci., 58(1), e2022RS007490, doi:10.1029/2022rs007490.AESYM-H
    12. Akhoondzadeh, M. (2023), Kalman Filter, ANN-MLP, LSTM and ACO Methods Showing Anomalous GPS-TEC Variations Concerning Turkey's Powerful Earthquake (6 February 2023), Remote Sens., 15(12), 3061, doi:10.3390/rs15123061.Dst
    13. Akhoondzadeh, M., and D. Marchetti (2023), Study of the Preparation Phase of Turkey's Powerful Earthquake (6 February 2023) by a Geophysical Multi-Parametric Fuzzy Inference System, Remote Sens., 15(9), 2224, doi:10.3390/rs15092224.Dst
    14. Alberti, T., P. De Michelis, L. Santarelli, D. Faranda, G. Consolini, and M. F. Marcucci (2023), Tracking Geomagnetic Storms with Dynamical System Approach: Ground-Based Observations, Remote Sens., 15(12), 3031, doi:10.3390/rs15123031.DstAESYM-HASY-H
    15. Alielden, K., E. Camporeale, M. B. Korsós, and Y. Taroyan (2023), Prediction Interval of Interface Regions: Machine Learning Nowcasting Approach, Space Weather, 21(3), e2022SW003326, doi:10.1029/2022sw003326.Dst
    16. Alves Ribeiro, J., F. J. G. Pinheiro, M. A. Pais, R. Santos, J. Cardoso, P. Baltazar-Soares, and F. A. Monteiro Santos (2023), Toward More Accurate GIC Estimations in the Portuguese Power Network, Space Weather, 21(6), e2022SW003397, doi:10.1029/2022sw003397.DstSYM-H
    17. Amadi, B. C., L. Qian, E. R. de Paula, J. M. MclNerney, E. A. Kherani, A. M. Santos, and S. A. Sanchez (2023), Intensification and Weakening of Equatorial Plasma Bubble Development Observed by GOLD During Different Phases of a Geomagnetic Storm, J. Geophys. Res. Space Physics, 128(10), e2022JA031262, doi:10.1029/2022ja031262.SYM-H
    18. Ambili, K. M., and R. K. Choudhary (2023), The role of the storm-time prompt penetrating electric field on the net distribution of plasma density over the low latitude ionospheric regions, Adv. Space Res., 72(5), 1644, doi:10.1016/j.asr.2023.04.046.AE
    19. Aminalragia-Giamini, S., C. Katsavrias, C. Papadimitriou, I. A. Daglis, A. Nasi, A. Brunet, S. Bourdarie, N. Dahmen, and G. Balasis (2023), The EMERALD Model for the Estimation of the Radial Diffusion Coefficients in the Outer Belt, Space Weather, 21(1), e2022SW003283, doi:10.1029/2022sw003283.SYM-H
    20. Anagnostopoulos, G. C., P. K. Marhavilas, E. Vassiliadis, and E. T. Sarris (2023), Jovian Periodicities ( 10 h, 40, 20, 15 min) at ACE, Upstream from the Earth's Bow Shock, on 25–27 November 2003, Universe, 9(8), 357, doi:10.3390/universe9080357.AESYM-HSYM-D
    21. Andoh, S., A. Saito, and H. Shinagawa (2023), E-Field Effects on Day-To-Day Variations of Geomagnetic Mid-Latitude Sporadic E Layers, J. Geophys. Res. Space Physics, 128(7), e2022JA031167, doi:10.1029/2022ja031167.AE
    22. Andreyev, A. B., S. N. Mukasheva, V. I. Kapytin, and O. I. Sokolova (2023), Estimating Geomagnetically Induced Currents in High-Voltage Power Lines for the Territory of Kazakhstan, Space Weather, 21(12), e2023SW003639, doi:10.1029/2023sw003639.Dst
    23. Ankita, M., S. Tulasi Ram, K. K. Ajith, and S. Sripathi (2023), Deep Electron Density Depletion Near Sunset Terminator on St. Patrick's Day Storm and Its Impacts on Skywave Propagation, Space Weather, 21(3), e2022SW003369, doi:10.1029/2022sw003369.SYM-HSYM-D
    24. Antonova, E. E., M. V. Stepanova, and I. P. Kirpichev (2023), Main features of magnetospheric dynamics in the conditions of pressure balance, J. Atmos. Sol.-Terr. Phys., 242, 105994, doi:10.1016/j.jastp.2022.105994.SYM-H
    25. Antonova, V., V. Lutsenko, G. Gordiyenko, and S. Kryukov (2023), Impact of Various Disturbance Sources on the Atmospheric Electric Field and Thunderstorm Activity of the Northern Tien-Shan, Atmosphere, 14(1), 164, doi:10.3390/atmos14010164.Dst
    26. Archana, R. K., K. Arora, and N. Nagarajan (2023), Prompt penetration effects on Equatorial Electrojet from the Indian sector, Earth Planets Space, 75(1), 122, doi:10.1186/s40623-023-01874-9.Dst
    27. Arnold, H., K. Sorathia, G. Stephens, M. Sitnov, V. G. Merkin, and J. Birn (2023), Data Mining Inspired Localized Resistivity in Global MHD Simulations of the Magnetosphere, J. Geophys. Res. Space Physics, 128(2), e2022JA030990, doi:10.1029/2022ja030990.AESYM-H
    28. Artemyev, A. V., V. Angelopoulos, X.-J. Zhang, L. Chen, and A. Runov (2023), Dispersed Relativistic Electron Precipitation Patterns Between the Ion and Electron Isotropy Boundaries, J. Geophys. Res. Space Physics, 128(12), e2023JA032200, doi:10.1029/2023ja032200.AE
    29. Atabati, A., I. Jazireeyan, M. Alizadeh, M. Pirooznia, J. Flury, H. Schuh, and B. Soja (2023), Analyzing the Ionospheric Irregularities Caused by the September 2017 Geomagnetic Storm Using Ground-Based GNSS, Swarm, and FORMOSAT-3/COSMIC Data near the Equatorial Ionization Anomaly in East Africa, Remote Sens., 15(24), 5762, doi:10.3390/rs15245762.DstAE
    30. Ayyagari, D., S. Datta, S. Das, and A. Datta (2023), Ionospheric response during Tropical Cyclones - A Brief Review on Amphan and Nisarga, Adv. Space Res., 71(6), 2799, doi:10.1016/j.asr.2022.11.026.Dst
    31. Babu, E. M., H. Nesse, S. M. Hatch, N. Olsen, J. A. Salice, and I. G. Richardson (2023), An Updated Geomagnetic Index-Based Model for Determining the Latitudinal Extent of Energetic Electron Precipitation, J. Geophys. Res. Space Physics, 128(10), e2023JA031371, doi:10.1029/2023ja031371.Dst
    32. Bag, T., and V. Sivakumar (2023), Diurnal Response of the Thermospheric radiative cooling to March 16-21, 2015 Geomagnetic Storm, Adv. Space Res., 71(1), 144, doi:10.1016/j.asr.2022.08.052.Dst
    33. Bag, T., D. Rout, Y. Ogawa, and V. Singh (2023), Distinctive Response of Thermospheric Cooling to ICME and CIR-Driven Geomagnetic storms, Front. Astron. Space Sci., 10, 2, doi:10.3389/fspas.2023.1107605.Dst
    34. Bag, T., D. Rout, Y. Ogawa, and V. Singh (2023), Thermospheric NO Cooling during an Unusual Geomagnetic Storm of 21-22 January 2005: A Comparative Study between TIMED/SABER Measurements and TIEGCM Simulations, Atmosphere, 14(3), 556, doi:10.3390/atmos14030556.DstSYM-H
    35. Bagheri, F., and R. E. Lopez (2023), Comparison of empirical models of ionospheric heating to global simulations, Front. Astron. Space Sci., 10, 1170390, doi:10.3389/fspas.2023.1170390.AESYM-H
    36. Bagiya, M. S., K. Heki, and V. K. Gahalaut (2023), Anisotropy of the Near-Field Coseismic Ionospheric Perturbation Amplitudes Reflecting the Source Process: The 2023 February Turkey Earthquakes, Geophys. Res. Lett., 50(14), e2023GL103931, doi:10.1029/2023gl103931.SYM-H
    37. Balasis, G., A. Z. Boutsi, C. Papadimitriou, S. M. Potirakis, V. Pitsis, I. A. Daglis, A. Anastasiadis, and O. Giannakis (2023), Investigation of Dynamical Complexity in Swarm-Derived Geomagnetic Activity Indices Using Information Theory, Atmosphere, 14(5), 890, doi:10.3390/atmos14050890.DstAESYM-H
    38. Balasis, G., et al. (2023), Complex Systems Methods Characterizing Nonlinear Processes in the Near-Earth Electromagnetic Environment: Recent Advances and Open Challenges, Space Sci. Rev., 219(5), 38, doi:10.1007/s11214-023-00979-7.DstAESYM-H
    39. Balodis, J., M. Normand, and A. Zarins (2023), The Movement of GPS Positioning Discrepancy Clouds at a Mid-Latitude Region in March 2015, Remote Sens., 15(8), 2032, doi:10.3390/rs15082032.DstAE
    40. Ban, P., L. Guo, Z. Zhao, S. Sun, T. Xu, Z. Xu, and F. Sun (2023), A Regional Ionospheric Storm Forecasting Method Using a Deep Learning Algorithm: LSTM, Space Weather, 21(3), e2022SW003061, doi:10.1029/2022sw003061.Dst
    41. Bandić, M., G. Verbanac, and S. Živković (2023), Geoeffective interplanetary magnetic field (IMF) from in situ data: realistic versus idealized spiral IMF, Sci. Rep., 13, 9661, doi:10.1038/s41598-023-36499-1.AE
    42. Bao, S., et al. (2023), The Relation Among the Ring Current, Subauroral Polarization Stream, and the Geospace Plume: MAGE Simulation of the 31 March 2001 Super Storm, J. Geophys. Res. Space Physics, 128(12), e2023JA031923, doi:10.1029/2023ja031923.SYM-H
    43. Baral, R., et al. (2023), Spectral Features of Forbush Decreases during Geomagnetic Storms, J. Atmos. Sol.-Terr. Phys., 242, 105981, doi:10.1016/j.jastp.2022.105981.DstSYM-H
    44. Barata, T., J. Pereira, M. Hernández-Pajares, T. Barlyaeva, and A. Morozova (2023), Ionosphere over Eastern North Atlantic Midlatitudinal Zone during Geomagnetic Storms, Atmosphere, 14(6), 949, doi:10.3390/atmos14060949.Dst
    45. Basciftci, F. (2023), Using artificial neural networks in the investigation of four moderate geomagnetic storms (mGSs) that occurred in 2015, Adv. Space Res., 71(10), 4382, doi:10.1016/j.asr.2023.01.001.DstAE
    46. Belakhovsky, V. B., et al. (2023), Relativistic electron flux growth during storm and non-storm periods as observed by ARASE and GOES satellites, Earth Planets Space, 75(1), 189, doi:10.1186/s40623-023-01925-1.DstAESYM-H
    47. Benella, S., V. Quattrociocchi, E. Papini, M. Stumpo, T. Alberti, M. F. Marcucci, P. De Michelis, M. Piersanti, and G. Consolini (2023), Modeling Turbulent Fluctuations in High-Latitude Ionospheric Plasma Using Electric Field CSES-01 Observations, Atmosphere, 14(9), 1466, doi:10.3390/atmos14091466.AESYM-H
    48. Berger, T. E., M. Dominique, G. Lucas, M. Pilinski, V. Ray, R. Sewell, E. K. Sutton, J. P. Thayer, and E. Thiemann (2023), The Thermosphere Is a Drag: The 2022 Starlink Incident and the Threat of Geomagnetic Storms to Low Earth Orbit Space Operations, Space Weather, 21(3), e2022SW003330, doi:10.1029/2022sw003330.Dst
    49. Bergin, A., S. C. Chapman, N. W. Watkins, N. R. Moloney, and J. W. Gjerloev (2023), Extreme Event Statistics in Dst, SYM-H, and SMR Geomagnetic Indices, Space Weather, 21(3), e2022SW003304, doi:10.1029/2022sw003304.DstSYM-H
    50. Berényi, K. A., A. Opitz, Z. Dálya, Á. Kis, and V. Barta (2023), Impact of ICME- and SIR/CIR-Driven Geomagnetic Storms on the Ionosphere over Hungary, Atmosphere, 14(9), 1377, doi:10.3390/atmos14091377.DstAESYM-H
    51. Bessarab, F. S., O. P. Borchevkina, I. V. Karpov, V. V. Klimenko, M. V. Klimenko, O. S. Yakovchuk, J. M. Wissing, and E. V. Rozanov (2023), Energetic Particle Precipitation Influence on Tidal Variations of Thermosphere Parameters in September 2017, Atmosphere, 14(5), 829, doi:10.3390/atmos14050829.DstAE
    52. Bhatt, B., and H. Chandra (2023), Comparison of Solar Activity Parameters and Associated Forbush Decreases in Solar Cycles 23 and 24, Sol. Phys., 298(11), 132, doi:10.1007/s11207-023-02227-1.Dst
    53. Biswas, T., and A. Paul (2023), Effects of the Relative Dynamics of Ionospheric Irregularities and GPS Satellites on Receiver Tracking Loop Performance, Radio Sci., 58(10), e2023RS007669, doi:10.1029/2023rs007669.Dst
    54. Biswas, T., J.-P. Weiss, and A. Paul (2023), Multi-Wavelength (L and S Band) Study of Ionospheric Irregularities From an Anomaly Crest Location, J. Geophys. Res. Space Physics, 128(7), e2022JA031269, doi:10.1029/2022ja031269.Dst
    55. Bojilova, R., and P. Mukhtarov (2023), Analysis of the Ionospheric Response to Sudden Stratospheric Warming and Geomagnetic Forcing over Europe during February and March 2023, Universe, 9(8), 351, doi:10.3390/universe9080351.Dst
    56. Bojilova, R., and P. Mukhtarov (2023), Comparative Analysis of Global and Regional Ionospheric Responses during Two Geomagnetic Storms on 3 and 4 February 2022, Remote Sens., 15(7), 1739, doi:10.3390/rs15071739.Dst
    57. Boroyev, R. N., and M. S. Vasiliev (2023), The auroral activity during the main phase of magnetic storms, Adv. Space Res., 71(1), 1137, doi:10.1016/j.asr.2022.10.034.DstAE
    58. Borries, C., A. A. Ferreira, G. Nykiel, and R. A. Borges (2023), A new index for statistical analyses and prediction of travelling ionospheric disturbances, J. Atmos. Sol.-Terr. Phys., 247, 106069, doi:10.1016/j.jastp.2023.106069.DstAESYM-H
    59. Botek, E., V. Pierrard, and A. Winant (2023), Prediction of Radiation Belts Electron Fluxes at a Low Earth Orbit Using Neural Networks With PROBA-V/EPT Data, Space Weather, 21(7), e2023SW003466, doi:10.1029/2023sw003466.DstAESYM-H
    60. Boutsi, A. Z., G. Balasis, S. Dimitrakoudis, I. A. Daglis, K. Tsinganos, C. Papadimitriou, and O. Giannakis (2023), Investigation of the Geomagnetically Induced Current Index Levels in the Mediterranean Region During the Strongest Magnetic Storms of Solar Cycle 24, Space Weather, 21(2), e2022SW003122, doi:10.1029/2022sw003122.Dst
    61. Brenner, A., T. I. Pulkkinen, Q. Al Shidi, and G. Toth (2023), Dissecting Earth's Magnetosphere: 3D Energy Transport in a Simulation of a Real Storm Event, J. Geophys. Res. Space Physics, 128(11), e2023JA031899, doi:10.1029/2023ja031899.AESYM-H
    62. Cai, X., et al. (2023), Equatorial Ionization Anomaly Discontinuity Observed by GOLD, COSMIC-2, and Ground-Based GPS Receivers' Network, Geophys. Res. Lett., 50(10), e2023GL102994, doi:10.1029/2023gl102994.AE
    63. Cai, X., et al. (2023), Investigation of the Southern Hemisphere Mid-High Latitude Thermospheric ∑O/N2 Responses to the Space-X Storm, J. Geophys. Res. Space Physics, 128(3), e2022JA031002, doi:10.1029/2022ja031002.Dst
    64. Campuzano, S. A., F. Delgado-Gómez, Y. Migoya-Orué, G. Rodríguez-Caderot, M. Herraiz-Sarachaga, and S. M. Radicella (2023), Study of Ionosphere Irregularities over the Iberian Peninsula during Two Moderate Geomagnetic Storms Using GNSS and Ionosonde Observations, Atmosphere, 14(2), 233, doi:10.3390/atmos14020233.Dst
    65. Cao, X., J. S. Halekas, S. Haaland, S. Ruhunusiri, and K.-H. Glassmeier (2023), Using machine learning to characterize solar wind driving of convection in the terrestrial magnetotail lobes, Front. Astron. Space Sci., 10, 1180410, doi:10.3389/fspas.2023.1180410.Dst
    66. Cao, X., X. Chu, J. Bortnik, J. M. Weygand, J. Li, H. Aryan, and D. Ma (2023), The Response of Ionospheric Currents to External Drivers Investigated Using a Neural Network-Based Model, Space Weather, 21(9), e2023SW003506, doi:10.1029/2023sw003506.AESYM-H
    67. Caraballo, R., J. A. González-Esparza, C. R. Pacheco, and P. Corona-Romero (2023), Improved Model for GIC Calculation in the Mexican Power Grid, Space Weather, 21(10), e2022SW003202, doi:10.1029/2022sw003202.Dst
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    491. Wu, H., T. Chen, V. Kalegaev, and S. Ye (2023), Different Behaviors of Outer Radiation Belt keV and MeV Electrons During Two Sequential Geomagnetic Storms, J. Geophys. Res. Space Physics, 128(10), e2023JA031700, doi:10.1029/2023ja031700.DstAE
    492. Wu, J., Z. Wang, J. Zhang, C. Yue, and L. Xie (2023), Conjugate observations of power line harmonic radiation onboard DEMETER, Earth Planets Space, 75(1), 66, doi:10.1186/s40623-023-01819-2.SYM-HSYM-D
    493. Wu, K., L. Qian, W. Wang, X. Cai, and J. M. Mclnerney (2023), Investigation of the GOLD Observed Merged Nighttime EIA With WACCM-X Simulations During the Storm of 3 and 4 November 2021, Geophys. Res. Lett., 50(13), e2023GL103603, doi:10.1029/2023gl103603.AESYM-H
    494. Wu, K., L. Qian, W. Wang, X. Cai, and J. M. Mclnerney (2023), Investigation of the Physical Mechanisms of the Formation and Evolution of Equatorial Plasma Bubbles During a Moderate Storm on 17 September 2021, Space Weather, 21(12), e2023SW003673, doi:10.1029/2023sw003673.DstAESYM-HSYM-D
    495. Wu, Z., Z. Su, H. Zheng, and Y. Wang (2023), Filtering of Magnetosonic Waves by Mesoscale Plasmaspheric Density Interfaces, Geophys. Res. Lett., 50(11), e2023GL103590, doi:10.1029/2023gl103590.SYM-H
    496. Xie, Z.-K., et al. (2023), Global ULF Waves Excited by Solar Wind Dynamic Pressure Impulses: 1. Timescales and Geomagnetic Activity Dependence, J. Geophys. Res. Space Physics, 128(10), e2023JA031813, doi:10.1029/2023ja031813.AESYM-H
    497. Xie, Z.-K., et al. (2023), Global ULF Waves Excited by Solar Wind Dynamic Pressure Impulses: 2. The Spatial Distribution Asymmetry, J. Geophys. Res. Space Physics, 128(10), e2023JA031826, doi:10.1029/2023ja031826.AESYM-H
    498. Xiong, B., Y. Wang, Y. Li, B. Zhao, Y. Yu, Z. Ren, L. Hu, W. Sun, and Z. Wu (2023), Anomalous Disturbance of the Ionosphere in the East Asia Region During the Geomagnetically Quiet Day on 1 November 2016, J. Geophys. Res. Space Physics, 128(2), e2022JA030905, doi:10.1029/2022ja030905.AESYM-HSYM-D
    499. Xiong, C., S. Wang, H. Lühr, F. Wang, and Y. Zhou (2023), Influence of the Polar Electrojet on Field-Aligned Current Estimates From Single Satellite Magnetic Field Measurements, J. Geophys. Res. Space Physics, 128(7), e2023JA031472, doi:10.1029/2023ja031472.AE
    500. Xu, S.-G., C. Yue, Q.-G. Zong, X.-Z. Zhou, and S.-Y. Fu (2023), Solar Wind Energy Budget Dilemma During Substorms Induced by Interplanetary Shocks, J. Geophys. Res. Space Physics, 128(8), e2022JA031192, doi:10.1029/2022ja031192.DstSYM-HSYM-D
    501. Xu, W., Y. Zhu, L. Zhu, J. Lu, G. Wei, M. Wang, and Y. Peng (2023), A class of Bayesian machine learning model for forecasting Dst during intense geomagnetic storms, Adv. Space Res., 72(9), 3882, doi:10.1016/j.asr.2023.07.009.Dst
    502. Xu, X., and C. Zhou (2023), Effects of Cold Plasma on the Mode Conversion From Fast Magnetosonic Wave to Electromagnetic Ion Cyclotron Wave in the Inner Plasmasphere, J. Geophys. Res. Space Physics, 128(9), e2022JA031273, doi:10.1029/2022ja031273.SYM-H
    503. Xue, D., J. Yang, Z. Liu, and S. Yu (2023), Examining the Economic Costs of the 2003 Halloween Storm Effects on the North Hemisphere Aviation Using Flight Data in 2019, Space Weather, 21(3), e2022SW003381, doi:10.1029/2022sw003381.Dst
    504. Xue, Z., Z. Yuan, X. Yu, Z. Huang, and D. Deng (2023), Enhanced Solar Wind Dynamic Pressure as a Driver of Low-Energy Proton Temperature Anisotropies and High-Frequency EMIC Waves, J. Geophys. Res. Space Physics, 128(9), e2023JA031929, doi:10.1029/2023ja031929.SYM-HSYM-D
    505. Yadav, S., L. R. Lyons, Y. Nishimura, J. M. Weygand, J. Liu, S.-R. Zhang, S. Tian, Y. Zou, and E. F. Donovan (2023), Association of Equatorward Extended Auroral Streamers With Overshielding Conditions at Equatorial Latitudes: First Observations, J. Geophys. Res. Space Physics, 128(11), e2023JA031726, doi:10.1029/2023ja031726.AESYM-HASY-H
    506. Yan, X., H. Cai, C. Xu, L. Yang, and W. Zhan (2023), A High-Precision and Lightweight Prediction Model for Global Total Electron Content, Remote Sens., 15(17), 4185, doi:10.3390/rs15174185.Dst
    507. Yan, Y., C. Yue, Q. Ma, X.-Z. Zhou, Q.-G. Zong, H. Fu, Z.-K. Xie, Z.-F. Yin, and Y.-X. Li (2023), Prompt Appearance of Large-Amplitude EMIC Waves Induced by Solar Wind Dynamic Pressure Enhancement and the Subsequent Relativistic Electron Precipitation, J. Geophys. Res. Space Physics, 128(7), e2023JA031399, doi:10.1029/2023ja031399.SYM-H
    508. Yang, Q., et al. (2023), Efficient Scattering Loss of Energetic Electrons by Enhanced Higher-Band ECH Waves Observed by Van Allen Probes, Geophys. Res. Lett., 50(9), e2023GL103927, doi:10.1029/2023gl103927.AE
    509. Yang, Q., S. Liu, H. Yang, Z. Gao, F. Xiao, and Q. He (2023), Observational Evidence of the Four-Wave Interaction Between Magnetospheric Whistler Mode Waves, J. Geophys. Res. Space Physics, 128(12), e2023JA032055, doi:10.1029/2023ja032055.SYM-H
    510. Yang, Z., L. Qiao, M. Su, Z. Hu, X. Teng, and J. Wang (2023), Ionospheric foF2 nowcast based on a machine learning GWO-ALSTM model, Adv. Space Res., 72(11), 4896, doi:10.1016/j.asr.2023.09.028.Dst
    511. Yang, Z., Y. T. J. Morton, and Y. Liu (2023), Time Lags Between Ionospheric Scintillation Detection at Northern Auroral Latitudes and Onset of Geomagnetic Storms, J. Geophys. Res. Space Physics, 128(11), e2023JA031491, doi:10.1029/2023ja031491.DstSYM-H
    512. Yizengaw, E. (2023), New Index to Characterize Ionospheric Irregularity Distribution, Space Weather, 21(9), e2023SW003469, doi:10.1029/2023sw003469.Dst
    513. Younas, W., M. Khan, C. Ammory-Mazaudier, and R. Fleury (2023), Reply to "Comment on Ionospheric and Magnetic Signature of a Space Weather Event on August 2018: CME and HSSWs by Kader et al. (2023)", J. Geophys. Res. Space Physics, 128(4), e2022JA030943, doi:10.1029/2022ja030943.SYM-H
    514. Yu, J., Z. Li, Y. Wang, J. Shao, L. Wang, J. Li, H. Zhang, X. Xu, and C. Gu (2023), An Empirical Orthogonal Function Study of the Ionospheric TEC Predicted Using the TIEGCM Model over the South Atlantic Anomaly in 2002 and 2008, Universe, 9(2), 102, doi:10.3390/universe9020102.Dst
    515. Yu, T., W. Wang, Z. Ren, X. Cai, and M. He (2023), Vertical Variations in Thermospheric O/N2 and the Relationship Between O and N2 Perturbations During a Geomagnetic Storm, Earth Space Sci., 10(10), e2023EA002988, doi:10.1029/2023ea002988.DstAE
    516. Yu, T., X. Cai, Z. Ren, Z. Wang, N. M. Pedatella, and Y. Jin (2023), Investigation of Interhemispheric Asymmetry of the Thermospheric Composition Observed by GOLD During the First Strong Geomagnetic Storm in Solar-Cycle 25, 1: IMF By Effects, J. Geophys. Res. Space Physics, 128(10), e2023JA031429, doi:10.1029/2023ja031429.DstAE
    517. Yu, Y., H. S. Fu, and Z. Wang (2023), Dipolarization Fronts in Cold-Dense and Hot-Tenuous Plasma Sheet Conditions: A Comparative Study, J. Geophys. Res. Space Physics, 128(2), e2022JA031141, doi:10.1029/2022ja031141.AE
    518. Yu, Y., Z.-J. Hu, H.-T. Cai, and Y.-S. Zhang (2023), Classification and Distribution of the Dayside Ion Upflows Associated with Auroral Particle Precipitation, Universe, 9(4), 164, doi:10.3390/universe9040164.AE
    519. Yuan, L., M. M. Hoque, and T. Kodikara (2023), The Four-Dimensional Variational Neustrelitz Electron Density Assimilation Model: NEDAM, Space Weather, 21(6), e2022SW003378, doi:10.1029/2022sw003378.AESYM-H
    520. Yutsis, V., A. Kotsarenko, V. Grimalsky, and S. Pulinets (2023), On the Radon-Related Mechanism of the Seismo- and Volcanogenic Geomagnetic Anomalies: Experiments in Tlamacas Mountain (Volcano Popocatepetl Area) and Electrode Effect Model, Atmosphere, 14(4), 705, doi:10.3390/atmos14040705.Dst
    521. Zeng, X. Y., S. Y. Ma, L. Xu, P. Valek, H. Wang, C. Xiong, and H. T. Cai (2023), Global 3-D Distributions of O+ and H+ Ions in the Inner Magnetosphere Reconstructed by Voxel Tomography From TWINS ENA Images During a Large Magnetic Storm, J. Geophys. Res. Space Physics, 128(7), e2023JA031442, doi:10.1029/2023ja031442.DstSYM-H
    522. Zhai, C., T. Dang, Y. Yao, J. Kong, Y. Chen, and X. Cheng (2023), Three-Dimensional Ionospheric Evolution and Asymmetry of the Electron Density Depletion Generated by the 21 June 2020 Annular Solar Eclipse, J. Geophys. Res. Space Physics, 128(12), e2023JA031725, doi:10.1029/2023ja031725.SYM-H
    523. Zhai, C., X. Cai, W. Wang, A. Coster, L. Qian, S. C. Solomon, T. Yu, and M. He (2023), Mid-Latitude Ionospheric Response to a Weak Geomagnetic Activity Event During Solar Minimum, J. Geophys. Res. Space Physics, 128(1), e2022JA030908, doi:10.1029/2022ja030908.AESYM-H
    524. Zhai, C., Y. Chen, X. Cheng, and X. Yin (2023), Spatiotemporal Evolution and Drivers of the Four Ionospheric Storms over the American Sector during the August 2018 Geomagnetic Storm, Atmosphere, 14(2), 335, doi:10.3390/atmos14020335.DstAE
    525. Zhang, H., G. D. Egbert, and Q. Huang (2023), Constraints on MTZ Water Content From Joint Inversion of Diurnal Variations and Magnetospheric Signals, Geophys. Res. Lett., 50(10), e2023GL102765, doi:10.1029/2023gl102765.Dst
    526. Zhang, K., H. Song, H. Wang, J. Liu, W. Wang, X. Wan, D. Wang, and Y. Jin (2023), Dynamics of the Tongue of Ionizations During the Geomagnetic Storm on 7 September 2015: The Altitudinal Dependences, J. Geophys. Res. Space Physics, 128(11), e2023JA031735, doi:10.1029/2023ja031735.Dst
    527. Zhang, S.-R., et al. (2023), Simultaneous Global Ionospheric Disturbances Associated With Penetration Electric Fields During Intense and Minor Solar and Geomagnetic Disturbances, Geophys. Res. Lett., 50(19), e2023GL104250, doi:10.1029/2023gl104250.AESYM-H
    528. Zhang, T., Y. Ebihara, and T. Tanaka (2023), Nighttime Geomagnetic Response to Jumps of Solar Wind Dynamic Pressure: A Possible Cause of Québec Blackout in March 1989, Space Weather, 21(11), e2023SW003493, doi:10.1029/2023sw003493.AE
    529. Zhang, Y., et al. (2023), Statistical Study of the Ionospheric Slab Thickness at Beijing Midlatitude Station, Remote Sens., 15(9), 2229, doi:10.3390/rs15092229.Dst
    530. Zhang, Y., Y. Yuan, B. Young, and L. J. Paxton (2023), A statistical study of Ring Current Aurora, J. Atmos. Sol.-Terr. Phys., 245, 106059, doi:10.1016/j.jastp.2023.106059.Dst
    531. Zhang, Z., C. Shen, Y. Chi, D. Mao, J. Liu, M. Xu, Z. Zhong, C. Wang, and Y. Wang (2023), Comparison of I-ICME and M-ICME Fittings and In Situ Observation Parameters for Solar Cycles 23 and 24 and Their Influence on Geoeffectiveness, Sol. Phys., 298(11), 138, doi:10.1007/s11207-023-02225-3.Dst
    532. Zhang, Z., D. Yang, D. Wang, L. Wang, F. Zhang, X. Li, and Z. Zeren (2023), Evidence for Electron Precipitation Diffused by Rising-Tone Quasiperiodic Whistler Waves in Extremely Low L–Shells Observed by CSES, J. Geophys. Res. Space Physics, 128(12), e2023JA032014, doi:10.1029/2023ja032014.Dst
    533. Zhao, H., S. T. Califf, R. Goyal, X. Li, M. Gkioulidou, J. W. Manweiler, and S. Krantz (2023), Statistical Analysis of the Differential Deep Penetration of Energetic Electrons and Protons into the Low L Region (L < 4), J. Geophys. Res. Space Physics, 128(4), e2022JA031125, doi:10.1029/2022ja031125.Dst
    534. Zhao, H., Y. Liu, H. Yang, Q. Zong, Z. Hu, X. Zhou, Y. Wang, J. Sun, and B. Li (2023), Equatorward Moving Auroral Arcs Associated with Impulse-Excited Field Line Resonance, Universe, 9(6), 249, doi:10.3390/universe9060249.SYM-H
    535. Zhao, J., B. Ren, F. Wu, H. Liu, G. Li, and D. Li (2023), TECX-TCN: Prediction of ionospheric total electron content at different latitudes in China based on XGBoost algorithm and temporal convolution network, J. Atmos. Sol.-Terr. Phys., 249, 106091, doi:10.1016/j.jastp.2023.106091.DstAE
    536. Zhou, Q., J. Li, F. Xiao, S. Zhang, S. Liu, C. Yang, Y. He, and Z. Gao (2023), Global Occurrence of Higher-Bands ECH Waves in Radiation Belts Based on a Novel Noise Reduction Algorithm (NORA), Geophys. Res. Lett., 50(6), e2022GL101889, doi:10.1029/2022gl101889.AE
    537. Zhou, S., X. Luan, D. Han, and S. Teng (2023), Direct Observation of Low-Energy Electron Precipitation in the Subauroral Region, J. Geophys. Res. Space Physics, 128(9), e2023JA031768, doi:10.1029/2023ja031768.SYM-H
    538. Zhou, Y., N. Y. Yamasaki, S. Toriumi, and K. Mitsuda (2023), Geocoronal Solar Wind Charge Exchange Process Associated With the 2006-December-13 Coronal Mass Ejection Event, J. Geophys. Res. Space Physics, 128(12), e2023JA032069, doi:10.1029/2023ja032069.Dst
    539. Zhou, Y.-J., et al. (2023), A Radial Standing Pc5-6 Wave and Its Energy Coupling With Field Line Resonance Within the Dusk-Sector Magnetosphere, J. Geophys. Res. Space Physics, 128(10), e2023JA031835, doi:10.1029/2023ja031835.SYM-H
    540. Zhu, Q., G. Lu, J. Lei, Y. Deng, E. Doornbos, J. van den IJssel, and C. Siemes (2023), Interhemispheric Asymmetry of the Thermospheric Neutral Density Response to the 7-9 September 2017 Geomagnetic Storms, Geophys. Res. Lett., 50(11), e2023GL103208, doi:10.1029/2023gl103208.AESYM-HSYM-D
    541. Živković, S., G. Verbanac, and M. Bandić (2023), Does the Time Resolution of the Geoeffective IMF Component Influence Its Annual, Semiannual and Diurnal Patterns?, Sol. Phys., 298(7), 94, doi:10.1007/s11207-023-02184-9.DstAE

    2022 477 papers↑ top

    1. Aa, E., et al. (2022), Pronounced Suppression and X-Pattern Merging of Equatorial Ionization Anomalies After the 2022 Tonga Volcano Eruption, J. Geophys. Res. Space Physics, 127(6), e30527, doi:10.1029/2022ja030527.SYM-H
    2. Aa, E., S.-R. Zhang, P. J. Erickson, J. Vierinen, A. J. Coster, L. P. Goncharenko, A. Spicher, and W. Rideout (2022), Significant Ionospheric Hole and Equatorial Plasma Bubbles After the 2022 Tonga Volcano Eruption, Space Weather, 20(7), e2022SW003101, doi:10.1029/2022sw003101.SYM-H
    3. Aa, E., S.-R. Zhang, P. J. Erickson, W. Wang, A. J. Coster, and W. Rideout (2022), 3-D Regional Ionosphere Imaging and SED Reconstruction With a New TEC-Based Ionospheric Data Assimilation System (TIDAS), Space Weather, 20(4), e2022SW003055, doi:10.1029/2022sw003055.SYM-H
    4. Adair, L., V. Angelopoulos, D. Sibeck, and X.-J. Zhang (2022), A Statistical Examination of EMIC Wave-Driven Electron Pitch Angle Scattering Signatures, J. Geophys. Res. Space Physics, 127(2), e2021JA029790, doi:10.1029/2021ja029790.Dst
    5. Akhoondzadeh, M., A. De Santis, D. Marchetti, and T. Wang (2022), Developing a Deep Learning-Based Detector of Magnetic, Ne, Te and TEC Anomalies from Swarm Satellites: The Case of Mw 7.1 2021 Japan Earthquake, Remote Sens., 14(7), 1582, doi:10.3390/rs14071582.Dst
    6. Al Shidi, Q., T. Pulkkinen, G. Toth, A. Brenner, S. Zou, and J. Gjerloev (2022), A Large Simulation Set of Geomagnetic Storms—Can Simulations Predict Ground Magnetometer Station Observations of Magnetic Field Perturbations?, Space Weather, 20(11), e2022SW003049, doi:10.1029/2022sw003049.DstAESYM-H
    7. Albert, D., P. Schachinger, R. L. Bailey, H. Renner, and G. Achleitner (2022), Analysis of Long-Term GIC Measurements in Transformers in Austria, Space Weather, 20(1), e2021SW002912, doi:10.1029/2021sw002912.Dst
    8. Alberti, T., D. Faranda, G. Consolini, P. De Michelis, R. V. Donner, and V. Carbone (2022), Concurrent Effects between Geomagnetic Storms and Magnetospheric Substorms, Universe, 8(4), 226, doi:10.3390/universe8040226.AESYM-H
    9. Alimaganbetov, M., and A. V. Streltsov (2022), Feedback Interactions Between the Ionosphere and Magnetosphere at Middle Latitude, J. Geophys. Res. Space Physics, 127(2), e2021JA029990, doi:10.1029/2021ja029990.DstAE
    10. Ambili, K. M., and R. K. Choudhary (2022), On the impact of meridional wind circulation changes in the electron density distribution over the Indian equatorial and low latitude ionospheric region during a severe geomagnetic storm, Adv. Space Res., 70(7), 2058, doi:10.1016/j.asr.2022.06.027.DstAE
    11. Amory-Mazaudier, C. (2022), Magnetic Signatures of Large-Scale Electric Currents in the Earth's Environment at Middle and Low Latitudes, Atmosphere, 13(10), 1699, doi:10.3390/atmos13101699.SYM-H
    12. Anagnostopoulos, G. C., S.-A. I. Menesidou, and D. A. Efthymiadis (2022), The March 2012 Heat Wave in Northeast America as a Possible Effect of Strong Solar Activity and Unusual Space Plasma Interactions, Atmosphere, 13(6), 926, doi:10.3390/atmos13060926.Dst
    13. Antonopoulou, A., G. Balasis, C. Papadimitriou, A. Z. Boutsi, A. Rontogiannis, K. Koutroumbas, I. A. Daglis, and O. Giannakis (2022), Convolutional Neural Networks for Automated ULF Wave Classification in Swarm Time Series, Atmosphere, 13(9), 1488, doi:10.3390/atmos13091488.Dst
    14. Arslan Tariq, M., Y. Yuyan, M. Shah, M. Ali Shah, T. Iqbal, and L. Liu (2022), Ionospheric-Thermospheric responses to the May and September 2017 geomagnetic storms over Asian regions, Adv. Space Res., 70(11), 3731, doi:10.1016/j.asr.2022.08.050.DstAE
    15. Artemyev, A. V., V. Angelopoulos, X.-J. Zhang, A. Runov, A. Petrukovich, R. Nakamura, E. Tsai, and C. Wilkins (2022), Thinning of the Magnetotail Current Sheet Inferred From Low-Altitude Observations of Energetic Electrons, J. Geophys. Res. Space Physics, 127(10), e2022JA030705, doi:10.1029/2022ja030705.AE
    16. Aryan, H., J. Bortnik, D. G. Sibeck, and G. Hospodarsky (2022), Global Map of Chorus Wave Sizes in the Inner Magnetosphere, J. Geophys. Res. Space Physics, 127(3), e29768, doi:10.1029/2021ja029768.AE
    17. Aryan, H., J. Bortnik, J. Li, J. M. Weygand, X. Chu, and V. Angelopoulos (2022), Multiple conjugate observations of magnetospheric fast flow bursts using THEMIS observations, Ann. Geophys., 40(4), 531, doi:10.5194/angeo-40-531-2022.AE
    18. Aschwanden, M. J. (2022), The Fractality and Size Distributions of Astrophysical Self-Organized Criticality Systems, Astrophys. J., 934(1), 33, doi:10.3847/1538-4357/ac6bf2.DstSYM-H
    19. Astafyeva, E., Y. V. Yasyukevich, B. Maletckii, A. Oinats, A. Vesnin, A. S. Yasyukevich, S. Syrovatskii, and N. Guendouz (2022), Ionospheric Disturbances and Irregularities During the 25-26 August 2018 Geomagnetic Storm, J. Geophys. Res. Space Physics, 127(1), e29843, doi:10.1029/2021ja029843.AESYM-H
    20. Babu, E. M., H. N. Tyssøy, C. Smith-Johnsen, V. Maliniemi, J. A. Salice, R. M. Millan, and I. G. Richardson (2022), Determining Latitudinal Extent of Energetic Electron Precipitation Using MEPED On-Board NOAA/POES, J. Geophys. Res. Space Physics, 127(9), e30489, doi:10.1029/2022ja030489.DstAE
    21. Bailey, R. L., R. Leonhardt, C. Möstl, C. Beggan, M. A. Reiss, A. Bhaskar, and A. J. Weiss (2022), Forecasting GICs and Geoelectric Fields From Solar Wind Data Using LSTMs: Application in Austria, Space Weather, 20(3), e2021SW002907, doi:10.1029/2021sw002907.DstSYM-H
    22. Ban, P., L. Guo, Z. Zhao, S. Sun, H. Zhang, F. Wang, Z. Xu, F. Sun, and T. Xu (2022), A New Index to Descript the Regional Ionospheric Disturbances During Storm Time, J. Geophys. Res. Space Physics, 127(2), e2021JA030126, doi:10.1029/2021ja030126.Dst
    23. Barad, R. K., S. Sripathi, and S. L. England (2022), Multi-Instrument Observations of the Ionospheric Response to the 26 December 2019 Solar Eclipse Over Indian and Southeast Asian Longitudes, J. Geophys. Res. Space Physics, 127(9), e30330, doi:10.1029/2022ja030330.Dst
    24. Barani, M., W. Tu, M. K. Hudson, and T. Sarris (2022), High-Fidelity Analysis of ULF Wave Mode Structure Following Interplanetary Shock Compression of the Dayside Magnetopause Using MMS Multi-Point Observations, J. Geophys. Res. Space Physics, 127(4), e30116, doi:10.1029/2021ja030116.AESYM-H
    25. Baumann, C., A. Kero, S. Raizada, M. Rapp, M. P. Sulzer, P. T. Verronen, and J. Vierinen (2022), Arecibo measurements of D-region electron densities during sunset and sunrise: implications for atmospheric composition, Ann. Geophys., 40(4), 519, doi:10.5194/angeo-40-519-2022.Dst
    26. Belov, A., N. Shlyk, M. Abunina, E. Belova, A. Abunin, and A. Papaioannou (2022), Solar Energetic Particle Events and Forbush Decreases Driven by the Same Solar Sources, Universe, 8(8), 403, doi:10.3390/universe8080403.Dst
    27. Bergin, A., S. C. Chapman, N. R. Moloney, and N. W. Watkins (2022), Variation of Geomagnetic Index Empirical Distribution and Burst Statistics Across Successive Solar Cycles, J. Geophys. Res. Space Physics, 127(1), e29986, doi:10.1029/2021ja029986.AE
    28. Besliu-Ionescu, D., G. Maris Muntean, and V. Dobrica (2022), Complex Catalogue of High Speed Streams Associated with Geomagnetic Storms During Solar Cycle 24, Sol. Phys., 297(5), 65, doi:10.1007/s11207-022-01998-3.DstSYM-H
    29. Beyene, F., V. Angelopoulos, A. Runov, and A. Artemyev (2022), Properties of Storm-Time Magnetic Flux Transport, J. Geophys. Res. Space Physics, 127(6), e30357, doi:10.1029/2022ja030357.DstAESYM-H
    30. Bezděková, B., F. Němec, and J. Manninen (2022), Ground-based VLF wave intensity variations investigated by the principal component analysis, Earth Planets Space, 74(1), 30, doi:10.1186/s40623-022-01588-4.DstAE
    31. Billett, D. D., K. A. McWilliams, R. B. Kerr, J. J. Makela, A. T. Chartier, J. M. Ruohoniemi, S. Kapali, M. A. Migliozzi, and J. Riccobono (2022), Mid-latitude neutral wind responses to sub-auroral polarization streams, Ann. Geophys., 40(5), 571, doi:10.5194/angeo-40-571-2022.Dst
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    468. Zhou, R., et al. (2022), Combined Scattering of Concurrent Unusual High-Frequency EMIC Waves and MS Waves on Radiation Belt Electrons, Geophys. Res. Lett., 49(13), e98378, doi:10.1029/2022gl098378.SYM-H
    469. Zhou, R., et al. (2022), Global Distribution of Concurrent EMIC Waves and Magnetosonic Waves: A Survey of Van Allen Probes Observations, J. Geophys. Res. Space Physics, 127(1), e30093, doi:10.1029/2021ja030093.AE
    470. Zhu, C., et al. (2022), Inter-Calibration Between the Electron Flux Measurements of FengYun-3B and Van Allen Probe-A Based on Electron Phase Space Density Conjunctions, J. Geophys. Res. Space Physics, 127(9), e30463, doi:10.1029/2022ja030463.Dst
    471. Zhu, H., J. Yu, Y. Dai, Y. Zhu, and Y. Huang (2022), Ionosphere Tomographic Model Based on Neural Network with Balance Cost and Dynamic Correction Using Multi-Constraints, Atmosphere, 13(3), 426, doi:10.3390/atmos13030426.Dst
    472. Zhu, Q., G. Lu, A. Maute, Y. Deng, and B. Anderson (2022), Assessment of Using Field-Aligned Currents to Drive the Global Ionosphere Thermosphere Model: A Case Study for the 2013 St Patrick's Day Geomagnetic Storm, Space Weather, 20(9), e2022SW003170, doi:10.1029/2022sw003170.DstAESYM-H
    473. Zhu, Q., Y. Deng, C. Sheng, P. Anderson, and A. Bukowski (2022), Impact of Soft Electron Precipitation on the Thermospheric Neutral Mass Density During Geomagnetic Storms: GITM Simulations, Geophys. Res. Lett., 49(11), e97260, doi:10.1029/2021gl097260.SYM-H
    474. Zong, J., D. Tao, and X. Shen (2022), Possible ELF/VLF Electric Field Disturbances Detected by Satellite CSES before Major Earthquakes, Atmosphere, 13(9), 1394, doi:10.3390/atmos13091394.Dst
    475. Zou, Y., C. Dowell, B. Ferdousi, L. R. Lyons, and J. Liu (2022), Auroral Drivers of Large dB∕dt During Geomagnetic Storms, Space Weather, 20(11), e2022SW003121, doi:10.1029/2022sw003121.DstAESYM-H
    476. Zou, Y., et al. (2022), Effects of Subauroral Polarization Streams on the Upper Thermospheric Winds During Non-Storm Time, J. Geophys. Res. Space Physics, 127(5), e29988, doi:10.1029/2021ja029988.AE
    477. Şentürk, E., M. Saqib, and M. A. Adil (2022), A Multi-Network based Hybrid LSTM model for ionospheric anomaly detection: A case study of the Mw 7.8 Nepal earthquake, Adv. Space Res., 70(2), 440, doi:10.1016/j.asr.2022.04.057.Dst

    2021 507 papers↑ top

    1. Aa, E., S.-R. Zhang, P. J. Erickson, A. J. Coster, L. P. Goncharenko, R. H. Varney, and R. Eastes (2021), Salient Midlatitude Ionosphere-Thermosphere Disturbances Associated With SAPS During a Minor but Geo-Effective Storm at Deep Solar Minimum, J. Geophys. Res. Space Physics, 126(7), e29509, doi:10.1029/2021ja029509.DstSYM-H
    2. Abuelezz, O. A., A. M. Mahrous, P. J. Cilliers, R. Fleury, M. Youssef, M. Nedal, and A. M. Yassen (2021), Neural network prediction of the topside electron content over the Euro-African sector derived from Swarm-A measurements, Adv. Space Res., 67(4), 1191, doi:10.1016/j.asr.2020.11.009.Dst
    3. AbuElezz, O. A., P. J. Cilliers, A. M. Mahrous, A. M. Yassen, and M. Youssef (2021), A proposed method for improving the IRI2016 model by means of Swarm over the American Sector during the event of 5-11 September 2017, Adv. Space Res., 68(5), 2204, doi:10.1016/j.asr.2021.01.031.AESYM-H
    4. Akala, A. O., O. J. Oyedokun, P. O. Amaechi, K. G. Simi, A. Ogwala, and O. A. Arowolo (2021), Solar Origins of August 26, 2018 Geomagnetic Storm: Responses of the Interplanetary Medium and Equatorial/Low-Latitude Ionosphere to the Storm, Space Weather, 19(10), e02734, doi:10.1029/2021sw002734.SYM-HSYM-D
    5. Alberti, T., G. Consolini, and P. De Michelis (2021), Complexity measures of geomagnetic indices in the last two solar cycles, J. Atmos. Sol.-Terr. Phys., 217, 105583, doi:10.1016/j.jastp.2021.105583.AESYM-H
    6. Alfonsi, L., et al. (2021), Ionospheric Disturbances Over the Indian Sector During 8 September 2017 Geomagnetic Storm: Plasma Structuring and Propagation, Space Weather, 19(3), e2020SW002607, doi:10.1029/2020sw002607.DstAE
    7. Amaechi, P. O., A. O. Akala, J. O. Oyedokun, K. G. Simi, O. Aghogho, and E. O. Oyeyemi (2021), Multi-Instrument Investigation of the Impact of the Space Weather Events of 6-10 September 2017, Space Weather, 19(12), e02806, doi:10.1029/2021sw002806.SYM-H
    8. Amaechi, P. O., E. O. Oyeyemi, A. O. Akala, H. E. Messanga, S. K. Panda, G. K. Seemala, J. O. Oyedokun, R. Fleury, and C. Amory-Mazaudier (2021), Ground Based GNSS and C/NOFS Observations of Ionospheric Irregularities Over Africa: A Case Study of the 2013 St. Patrick's Day Geomagnetic Storm, Space Weather, 19(2), e2020SW002631, doi:10.1029/2020sw002631.AESYM-H
    9. Arowolo, O. A., A. O. Akala, and E. O. Oyeyemi (2021), Interplanetary Origins of Some Intense Geomagnetic Storms During Solar Cycle 24 and the Responses of African Equatorial/Low Latitude Ionosphere to Them, J. Geophys. Res. Space Physics, 126(2), e27929, doi:10.1029/2020ja027929.DstSYM-HSYM-D
    10. Artemyev, A., et al. (2021), Comparative Study of Electric Currents and Energetic Particle Fluxes in a Solar Flare and Earth Magnetospheric Substorm, Astrophys. J., 923(2), 151, doi:10.3847/1538-4357/ac2dfc.DstAE
    11. Aryan, H., J. Bortnik, N. P. Meredith, R. B. Horne, D. G. Sibeck, and M. A. Balikhin (2021), Multi Parameter Chorus and Plasmaspheric Hiss Wave Models, J. Geophys. Res. Space Physics, 126(1), e28403, doi:10.1029/2020ja028403.DstAE
    12. Azpilicueta, F., and B. Nava (2021), A different view of the ionospheric winter anomaly, Adv. Space Res., 67(1), 150, doi:10.1016/j.asr.2020.10.039.Dst
    13. Bag, T., Z. Li, and D. Rout (2021), SABER Observation of Storm Time Hemispheric Asymmetry in Nitric Oxide Radiative Emission, J. Geophys. Res. Space Physics, 126(4), e28849, doi:10.1029/2020ja028849.Dst
    14. Baker, D. N., et al. (2021), The Relativistic Electron-Proton Telescope (REPT) Investigation: Design, Operational Properties, and Science Highlights, Space Sci. Rev., 217(5), 68, doi:10.1007/s11214-021-00838-3.DstAESYM-H
    15. Balan, N., S. T. Ram, V. Manu, L. Zhao, Z.-Y. Xing, and Q.-H. Zhang (2021), Diurnal UT Variation of Low Latitude Geomagnetic Storms Using Six Indices, J. Geophys. Res. Space Physics, 126(10), e28854, doi:10.1029/2020ja028854.Dst
    16. Bao, S., F. Toffoletto, J. Yang, S. Sazykin, and M. Wiltberger (2021), Coupling the Rice Convection Model-Equilibrium to the Lyon-Fedder-Mobarry Global Magnetohydrodynamic Model, J. Geophys. Res. Space Physics, 126(8), e28973, doi:10.1029/2020ja028973.Dst
    17. Bashir, M. F., and R. Ilie (2021), The First Observation of N+ Electromagnetic Ion Cyclotron Waves, J. Geophys. Res. Space Physics, 126(3), e28716, doi:10.1029/2020ja028716.AE
    18. Behailu, G., M. Nigussie, G. D. Reeves, and S. Wing (2021), Driving Parameters for Multi-MeV Electrons Flux Variations in Outer Radiation Belt, J. Geophys. Res. Space Physics, 126(11), e29625, doi:10.1029/2021ja029625.Dst
    19. Belakhovsky, V. B., Y. Jin, and W. J. Miloch (2021), Influence of different types of ionospheric disturbances on GPS signals at polar latitudes, Ann. Geophys., 39(4), 687, doi:10.5194/angeo-39-687-2021.AESYM-H
    20. Belov, A., et al. (2021), On the Rigidity Spectrum of Cosmic-Ray Variations within Propagating Interplanetary Disturbances: Neutron Monitor and SOHO/EPHIN Observations at ∼1-10 GV, Astrophys. J., 908(1), 5, doi:10.3847/1538-4357/abd724.Dst
    21. Bessarab, F. S., T. V. Sukhodolov, M. V. Klimenko, V. V. Klimenko, Y. N. Korenkov, B. Funke, I. E. Zakharenkova, J. M. Wissing, and E. V. Rozanov (2021), Ionospheric response to solar and magnetospheric protons during January 15-22, 2005: EAGLE whole atmosphere model results, Adv. Space Res., 67(1), 133, doi:10.1016/j.asr.2020.10.026.DstAE
    22. Bhargawa, A., and A. K. Singh (2021), Elucidation of some solar parameters observed during solar cycles 21-24, Adv. Space Res., 68(6), 2643, doi:10.1016/j.asr.2021.04.037.Dst
    23. Bhaskar, A., D. Sibeck, S. G. Kanekal, H. J. Singer, G. Reeves, D. M. Oliveira, S.-B. Kang, and C. Komar (2021), Radiation Belt Response to Fast Reverse Shock at Geosynchronous Orbit, Astrophys. J., 910(2), 154, doi:10.3847/1538-4357/abd702.SYM-H
    24. Biswas, T., and A. Paul (2021), Signal In Space Performance Under Multiconstellation Environment From an Indian Low Latitude Station, Radio Sci., 56(4), e2020RS007119, doi:10.1029/2020rs007119.Dst
    25. Blake, S. P., A. Pulkkinen, P. W. Schuck, A. Glocer, and G. Tóth (2021), Estimating Maximum Extent of Auroral Equatorward Boundary Using Historical and Simulated Surface Magnetic Field Data, J. Geophys. Res. Space Physics, 126(2), e28284, doi:10.1029/2020ja028284.DstSYM-H
    26. Blake, S. P., A. Pulkkinen, P. W. Schuck, A. Glocer, D. M. Oliveira, D. T. Welling, R. S. Weigel, and G. Quaresima (2021), Recreating the Horizontal Magnetic Field at Colaba During the Carrington Event With Geospace Simulations, Space Weather, 19(5), e02585, doi:10.1029/2020sw002585.DstSYM-H
    27. Bland, E., F. Tesema, and N. Partamies (2021), D-region impact area of energetic electron precipitation during pulsating aurora, Ann. Geophys., 39(1), 135, doi:10.5194/angeo-39-135-2021.AE
    28. Blum, L. W., A. Koval, I. G. Richardson, L. B. Wilson, D. Malaspina, A. Greeley, and A. N. Jaynes (2021), Prompt Response of the Dayside Magnetosphere to Discrete Structures Within the Sheath Region of a Coronal Mass Ejection, Geophys. Res. Lett., 48(11), e92700, doi:10.1029/2021gl092700.Dst
    29. Blunier, S., B. Toledo, J. Rogan, and J. A. Valdivia (2021), A Nonlinear System Science Approach to Find the Robust Solar Wind Drivers of the Multivariate Magnetosphere, Space Weather, 19(6), e2020SW002634, doi:10.1029/2020sw002634.DstAE
    30. Bolaji, O. S., et al. (2021), Storm Time Effects on Latitudinal Distribution of Ionospheric TEC in the American and Asian-Australian Sectors: August 25-26, 2018 Geomagnetic Storm, J. Geophys. Res. Space Physics, 126(8), e29068, doi:10.1029/2020ja029068.Dst
    31. Borchevkina, O. P., Y. A. Kurdyaeva, Y. A. Dyakov, I. V. Karpov, G. V. Golubkov, P. K. Wang, and M. G. Golubkov (2021), Temporal variations in high frequency ionospheric radio wave absorption at mid-latitudes, Atmosphere, 39(4), 475, doi:10.3390/atmos12111384.DstAE
    32. Borovsky, J. E. (2021), On the Saturation (or Not) of Geomagnetic Indices %K Geomagnetic indices, Polar cap saturation, Solar wind - Magnetosphere - Ionosphere coupling, Geomagnetic activity, Reconnection %I ELECTR: http://journal.frontiersin.org/Journal/10.3389/fspas.2021.740811/full; DOI: 10.3389/fspas.2021.740811, Front. Astron. Space Sci., 8, 175, doi:10.3389/fspas.2021.740811.AE
    33. Boschini, M. J., S. Della Torre, M. Gervasi, D. Grandi, G. La Vacca, P. G. Rancoita, D. Rozza, and M. Tacconi (2021), A quantitative study on the effects of external geomagnetic fields by using the GeoMagSphere back-tracing code, Adv. Space Res., 68(7), 2904, doi:10.1016/j.asr.2021.05.022.Dst
    34. Boudouridis, A., and E. Zesta (2021), Automated Technique for the Detection of Step-Like Solar Wind Dynamic Pressure Changes: Application to the Response of the Transpolar Potential to Solar Wind Dynamic Pressure Fronts, J. Geophys. Res. Space Physics, 126(8), e29198, doi:10.1029/2021ja029198.SYM-H
    35. Boynton, R. J., S. N. Walker, H. Aryan, Y. Hobara, and M. A. Balikhin (2021), A Dynamical Model of Equatorial Magnetosonic Waves in the Inner Magnetosphere: A Machine Learning Approach, J. Geophys. Res. Space Physics, 126(6), e28439, doi:10.1029/2020ja028439.DstAESYM-H
    36. Briand, C., K. Doerksen, and F. Deleflie (2021), Solar EUV-Enhancement and Thermospheric Disturbances, Space Weather, 19(12), e02840, doi:10.1029/2021sw002840.Dst
    37. Cai, L., A. Kullen, Y. Zhang, T. Karlsson, and A. Vaivads (2021), DMSP Observations of High Latitude Dayside Aurora (HiLDA), J. Geophys. Res. Space Physics, 126(4), e28808, doi:10.1029/2020ja028808.AE
    38. Cai, X., A. G. Burns, W. Wang, L. Qian, S. C. Solomon, R. W. Eastes, W. E. McClintock, and F. I. Laskar (2021), Investigation of a Neutral "Tongue" Observed by GOLD During the Geomagnetic Storm on May 11, 2019, J. Geophys. Res. Space Physics, 126(6), e28817, doi:10.1029/2020ja028817.DstAE
    39. Cai, X., et al. (2021), Observation of Postsunset OI 135.6 nm Radiance Enhancement Over South America by the GOLD Mission, J. Geophys. Res. Space Physics, 126(2), e28108, doi:10.1029/2020ja028108.DstAE
    40. Cai, X., et al. (2021), Variations in Thermosphere Composition and Ionosphere Total Electron Content Under "Geomagnetically Quiet" Conditions at Solar-Minimum, Geophys. Res. Lett., 48(11), e93300, doi:10.1029/2021gl093300.DstAE
    41. Calabia, A., and S. Jin (2021), Thermospheric Mass Density Disturbances Due to Magnetospheric Forcing From 2014-2020 CASSIOPE Precise Orbits, J. Geophys. Res. Space Physics, 126(8), e29540, doi:10.1029/2021ja029540.Dst
    42. Calabia, A., and S. Jin (2021), Upper Atmosphere Mass Density Variations From CASSIOPE Precise Orbits, Space Weather, 19(4), e2020SW002645, doi:10.1029/2020sw002645.Dst
    43. Carter, J. A., A. A. Samsonov, S. E. Milan, G. Branduardi-Raymont, A. J. Ridley, L. J. Paxton, B. J. Anderson, C. L. Waters, and T. Edwards (2021), Field-Aligned Current During an Interval of BY-Dominated Interplanetary-Field; Modeled-to-Observed Comparisons, J. Geophys. Res. Space Physics, 126(12), e29722, doi:10.1029/2021ja029722.AE
    44. Castillo, Y., M. A. Pais, J. Fernandes, P. Ribeiro, A. L. Morozova, and F. J. G. Pinheiro (2021), Relating 27-Day Averages of Solar, Interplanetary Medium Parameters, and Geomagnetic Activity Proxies in Solar Cycle 24, Sol. Phys., 296(7), 115, doi:10.1007/s11207-021-01856-8.DstAESYM-H
    45. Chakraborty, M., A. K. Singh, and S. S. Rao (2021), Solar flares and geomagnetic storms of September 2017: Their impacts on the TEC over 75°E longitude sector, Adv. Space Res., 68(4), 1825, doi:10.1016/j.asr.2021.04.012.DstAESYM-H
    46. Chakraborty, S., D. Chakrabarty, G. D. Reeves, D. N. Baker, S. G. Claudepierre, A. W. Breneman, D. P. Hartley, and B. A. Larsen (2021), Van Allen Probe Observations of Disappearance, Recovery and Patchiness of Plasmaspheric Hiss Following Two Consecutive Interplanetary Shocks: First Results, J. Geophys. Res. Space Physics, 126(4), e28873, doi:10.1029/2020ja028873.AESYM-H
    47. Chartier, A. T., S. Datta-Barua, S. E. McDonald, G. S. Bust, J. Tate, L. P. Goncharenko, G. Romeo, and R. K. Schaefer (2021), Night-Time Ionospheric Localized Enhancements (NILE) Observed in North America Following Geomagnetic Disturbances, J. Geophys. Res. Space Physics, 126(9), e29324, doi:10.1029/2021ja029324.Dst
    48. Chen, A., C. Yue, H. Chen, Q. Zong, S. Fu, Y. Wang, and J. Ren (2021), Ring Current Decay During Geomagnetic Storm Recovery Phase: Comparison Between RBSP Observations and Theoretical Modeling, J. Geophys. Res. Space Physics, 126(1), e28500, doi:10.1029/2020ja028500.DstAESYM-H
    49. Chen, R., X. Gao, Q. Lu, L. Chen, B. T. Tsurutani, W. Li, B. Ni, and S. Wang (2021), In Situ Observations of Whistler Mode Chorus Waves Guided by Density Ducts, J. Geophys. Res. Space Physics, 126(4), e28814, doi:10.1029/2020ja028814.AESYM-H
    50. Chen, S. S., C. M. Denardini, L. C. A. Resende, R. A. J. Chagas, J. Moro, R. P. Silva, C. S. Carmo, and G. A. S. Picanço (2021), Influence of the uncertainties in the Solar Quiet Reference Field (SQRF) model for deriving geomagnetic indices over South America, J. Atmos. Sol.-Terr. Phys., 219, 105645, doi:10.1016/j.jastp.2021.105645.Dst
    51. Chen, X., J. Lei, D. Ren, and W. Wang (2021), A Deep Learning Model for the Thermospheric Nitric Oxide Emission, Space Weather, 19(3), e2020SW002619, doi:10.1029/2020sw002619.Dst
    52. Chen, Y. Q., et al. (2021), Statistical Characteristics of Field Aligned Currents in the Plasma Sheet Boundary Layer, J. Geophys. Res. Space Physics, 126(2), e28319, doi:10.1029/2020ja028319.AE
    53. Cheng, N., S. Song, and W. Li (2021), Multi-Scale Ionospheric Anomalies Monitoring and Spatio-Temporal Analysis during Intense Storm, Atmosphere, 12(2), 215, doi:10.3390/atmos12020215.DstSYM-H
    54. Cheng, N., S. Song, G. Jiao, X. Jin, and W. Li (2021), Global Monitoring of Geomagnetic Storm Induced Ionosphere Anomalies Using 3 D Ionospheric Modeling With Multi GNSS and COSMIC Measurements, Radio Sci., 56(2), e2020RS007074, doi:10.1029/2020rs007074.Dst
    55. Cheng, Z. W., J. K. Shi, K. Torkar, G. P. Lu, M. W. Dunlop, C. M. Carr, H. Rème, I. Dandouras, and A. Fazakerley (2021), Impact of the Solar Wind Dynamic Pressure on the Field-Aligned Currents in the Magnetotail: Cluster Observation, J. Geophys. Res. Space Physics, 126(12), e29785, doi:10.1029/2021ja029785.AE
    56. Chidinma, O. E., Y.-H. Yan, Z. Yin, O. U. Kingsley, and O. F. Nneka (2021), Impact of solar and geomagnetic activities on total column ozone in China, J. Atmos. Sol.-Terr. Phys., 223, 105738, doi:10.1016/j.jastp.2021.105738.DstAE
    57. Choraghe, K., A. Raghav, D. Chakrabarty, S. Kasthurirangan, and N. Bijewar (2021), Properties of the Recovery Phase of Extreme Storms, J. Geophys. Res. Space Physics, 126(9), e28685, doi:10.1029/2020ja028685.DstSYM-H
    58. Chu, X., et al. (2021), Relativistic Electron Model in the Outer Radiation Belt Using a Neural Network Approach, Space Weather, 19(12), e2021SW002808, doi:10.1029/2021sw002808.DstAESYM-H
    59. Chu, X., R. McPherron, T.-S. Hsu, V. Angelopoulos, J. M. Weygand, J. Liu, and J. Bortnik (2021), Magnetotail Flux Accumulation Leads to Substorm Current Wedge Formation: A Case Study, J. Geophys. Res. Space Physics, 126(1), e8342, doi:10.1029/2020ja028342.AE
    60. Claudepierre, S. G., X. Liu, L. Chen, and K. Takahashi (2021), Observational Evidence of the Excitation of Magnetosonic Waves by an He++ Ion Ring Distribution, J. Geophys. Res. Space Physics, 126(8), e29532, doi:10.1029/2021ja029532.SYM-H
    61. Cohen, I. J., D. L. Turner, B. H. Mauk, S. T. Bingham, J. B. Blake, J. F. Fennell, and J. L. Burch (2021), Characteristics of Energetic Electrons Near Active Magnetotail Reconnection Sites: Statistical Evidence for Local Energization, Geophys. Res. Lett., 48(1), e90087, doi:10.1029/2020gl090087.AE
    62. Collado-Villaverde, A., P. Muñoz, and C. Cid (2021), Deep Neural Networks With Convolutional and LSTM Layers for SYM-H and ASY-H Forecasting, Space Weather, 19(6), e02748, doi:10.1029/2021sw002748.DstAESYM-HASY-H
    63. Conroy, J. P., K. Deshpande, B. Kunduri, R. H. Varney, W. Scales, and A. Zaghloul (2021), Ionospheric Scintillation Data Inversion to Characterize the Structures Associated With a Series of Polar Cap Patches, Radio Sci., 56(8), e2020RS007235, doi:10.1029/2020rs007235.AE
    64. Consolini, G., P. De Michelis, I. Coco, T. Alberti, M. F. Marcucci, F. Giannattasio, and R. Tozzi (2021), Sign-Singularity Analysis of Field-Aligned Currents in the Ionosphere, Atmosphere, 12(6), 708, doi:10.3390/atmos12060708.AE
    65. Consolini, G., R. Tozzi, P. De Michelis, I. Coco, F. Giannattasio, M. Pezzopane, M. F. Marcucci, and G. Balasis (2021), High-latitude polar pattern of ionospheric electron density: Scaling features and IMF dependence, J. Atmos. Sol.-Terr. Phys., 217, 105531, doi:10.1016/j.jastp.2020.105531.SYM-HASY-H
    66. Consolini, G., V. Quattrociocchi, G. D'Angelo, T. Alberti, M. Piersanti, M. F. Marcucci, and P. De Michelis (2021), Electric Field Multifractal Features in the High-Latitude Ionosphere: CSES-01 Observations, Atmosphere, 12(5), 646, doi:10.3390/atmos12050646.AE
    67. Cooper, M. B., A. J. Gerrard, L. J. Lanzerotti, A. R. Soto-Chavez, H. Kim, I. V. Kuzichev, and L. V. Goodwin (2021), Mirror Instabilities in the Inner Magnetosphere and Their Potential for Localized ULF Wave Generation, J. Geophys. Res. Space Physics, 126(2), e28773, doi:10.1029/2020ja028773.Dst
    68. Currie, J. L., et al. (2021), On the Generation of an Unseasonal EPB Over South East Asia, J. Geophys. Res. Space Physics, 126(2), e28724, doi:10.1029/2020ja028724.AESYM-H
    69. Da Silva, L. A., et al. (2021), High-Energy Electron Flux Enhancement Pattern in the Outer Radiation Belt in Response to the Alfvénic Fluctuations Within High-Speed Solar Wind Stream: A Statistical Analysis, J. Geophys. Res. Space Physics, 126(8), e29363, doi:10.1029/2021ja029363.AE
    70. Danilov, A. D., and A. V. Konstantinova (2021), Behavior of foF2 prior to geomagnetic storms according to Slough and Juliusruh data, Adv. Space Res., 67(12), 4066, doi:10.1016/j.asr.2021.02.016.Dst
    71. Davoudifar, P., K. R. Tabari, A. A. E. Shafigh, A. Ajabshirizadeh, Z. Bagheri, F. Akbarian Tork Abad, and M. Shayan (2021), Development of a local empirical model of ionospheric total electron content (TEC) and its application for studying solar-ionospheric effects, Sci. Rep., 11, 15070, doi:10.1038/s41598-021-93496-y.DstSYM-HSYM-DASY-H
    72. De Michelis, P., G. Consolini, A. Pignalberi, R. Tozzi, I. Coco, F. Giannattasio, M. Pezzopane, and G. Balasis (2021), Looking for a proxy of the ionospheric turbulence with Swarm data, Sci. Rep., 11, 6183, doi:10.1038/s41598-021-84985-1.AE
    73. Debchoudhury, S., D. Sardana, and G. D. Earle (2021), The Relative Importance of Geomagnetic Storm Signatures on the Total Electron Content Perturbations Over the Continental US, J. Geophys. Res. Space Physics, 126(5), e28125, doi:10.1029/2020ja028125.SYM-H
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    426. Wang, G., S. Yao, Y. Yu, D. Wei, F. Di, X. Bao, S. Zhang, and J. Liu (2021), Aurora Sightings Observed in Chinese History Caused by CIRs or Great-storm CMEs, Astrophys. J., 908(2), 187, doi:10.3847/1538-4357/abd0fe.Dst
    427. Wang, G., Z. Gao, M. Wu, G. Wang, S. Xiao, Y. Chen, Z. Zou, and T. Zhang (2021), Trapping and Amplification of Unguided Mode EMIC Waves in the Radiation Belt, J. Geophys. Res. Space Physics, 126(9), e29322, doi:10.1029/2021ja029322.AESYM-H
    428. Wang, H., and H. Lühr (2021), Effects of Solar Illumination and Substorms on Auroral Electrojets Based on CHAMP Observations, J. Geophys. Res. Space Physics, 126(2), e28905, doi:10.1029/2020ja028905.AE
    429. Wang, H., Y. F. He, H. Lühr, and J. Zhang (2021), Local Time and Longitudinal Differences in the Occurrence Frequency of Ionospheric EMIC Waves During Magnetic Storm Periods, J. Geophys. Res. Space Physics, 126(2), e28878, doi:10.1029/2020ja028878.DstAE
    430. Wang, N., J. Yue, W. Wang, L. Qian, L. Jian, and J. Zhang (2021), A Comparison of the CIR- and CME-Induced Geomagnetic Activity Effects on Mesosphere and Lower Thermospheric Temperature, J. Geophys. Res. Space Physics, 126(6), e29029, doi:10.1029/2020ja029029.DstAE
    431. Wang, N., T. Dang, J. Lei, W. Wang, and S. Datta-Barua (2021), Alignment of High-Latitude Ionospheric and Thermospheric Lagrangian Coherent Structures, J. Geophys. Res. Space Physics, 126(6), e29028, doi:10.1029/2020ja029028.DstAE
    432. Wang, W., et al. (2021), Magnetospheric Source and Electric Current System Associated With Intense SAIDs, Geophys. Res. Lett., 48(22), e93253, doi:10.1029/2021gl093253.AE
    433. Wang, X., J. Miao, X. Lu, E. Aa, J. Liu, Y. Wang, and S. Liu (2021), Latitudinal Impacts of Joule Heating on the High-Latitude Thermospheric Density Enhancement During Geomagnetic Storms, J. Geophys. Res. Space Physics, 126(7), e28747, doi:10.1029/2020ja028747.Dst
    434. Wang, Y., P. T. Jayachandran, D. R. Themens, A. M. McCaffrey, Q.-H. Zhang, S. David, and R. Chadwick (2021), A Case Study of Polar Cap Sporadic-E Layer Associated with TEC Variations, Remote Sens., 13(7), 1324, doi:10.3390/rs13071324.AESYM-H
    435. Wang, Z., S. Zou, L. Liu, J. Ren, and E. Aa (2021), Hemispheric Asymmetries in the Mid latitude Ionosphere During the September 7-8, 2017 Storm: Multi instrument Observations, J. Geophys. Res. Space Physics, 126(4), e28829, doi:10.1029/2020ja028829.SYM-H
    436. Warden, L. J., C. L. Waters, M. D. Sciffer, and A. J. Hull (2021), On the Estimation of the Ratio of ULF Wave Electric Fields in Space and the Magnetic Fields at the Ground, J. Geophys. Res. Space Physics, 126(7), e29052, doi:10.1029/2020ja029052.Dst
    437. Watari, S., S. Nakamura, and Y. Ebihara (2021), Measurement of geomagnetically induced current (GIC) around Tokyo, Japan, Earth Planets Space, 73(1), 102, doi:10.1186/s40623-021-01422-3.DstAESYM-H
    438. Watson, C., D. R. Themens, and P. T. Jayachandran (2021), Development and Validation of Precipitation Enhanced Densities for the Empirical Canadian High Arctic Ionospheric Model, Space Weather, 19(10), e2021SW002779, doi:10.1029/2021sw002779.AE
    439. Wei, L., C. Jiang, Y. Hu, E. Aa, W. Huang, J. Liu, G. Yang, and Z. Zhao (2021), Ionosonde Observations of Spread F and Spread Es at Low and Middle Latitudes During the Recovery Phase of the 7–9 September 2017 Geomagnetic Storm, Remote Sens., 13(5), 1010, doi:10.3390/rs13051010.DstAE
    440. Welling, D. T., J. J. Love, E. J. Rigler, D. M. Oliveira, C. M. Komar, and S. K. Morley (2021), Numerical Simulations of the Geospace Response to the Arrival of an Idealized Perfect Interplanetary Coronal Mass Ejection, Space Weather, 19(2), e02489, doi:10.1029/2020sw002489.DstAE
    441. Weng, D., S. Ji, Y. Lu, W. Chen, and Z. Li (2021), Improving DGNSS Performance through the Use of Network RTK Corrections, Remote Sens., 13(9), 1621, doi:10.3390/rs13091621.Dst
    442. Weygand, J. M., et al. (2021), SECS Analysis of Nighttime Magnetic Perturbation Events Observed in Arctic Canada, J. Geophys. Res. Space Physics, 126(11), e29839, doi:10.1029/2021ja029839.AESYM-H
    443. Weygand, J. M., I. Zhelavskaya, and Y. Shprits (2021), A Comparison of the Location of the Mid Latitude Trough and Plasmapause Boundary, J. Geophys. Res. Space Physics, 126(4), e28213, doi:10.1029/2020ja028213.DstAESYM-H
    444. Wintoft, P., and M. Wik (2021), Exploring three recurrent neural network architectures for geomagnetic predictions, Front. Astron. Space Sci., 8, 72, doi:10.3389/fspas.2021.664483.Dst
    445. Wu, C., A. J. Ridley, A. D. DeJong, and L. J. Paxton (2021), FTA: A Feature Tracking Empirical Model of Auroral Precipitation, Space Weather, 19(5), e02629, doi:10.1029/2020sw002629.AE
    446. Wu, K., J. Xu, Y. Zhu, and W. Yuan (2021), Ionospheric Plasma Vertical Drift and Zonal Wind Variations Cause Unusual Evolution of EPBs During a Geomagnetically Quiet Night, J. Geophys. Res. Space Physics, 126(12), e29893, doi:10.1029/2021ja029893.Dst
    447. Wu, T.-Y., J.-Y. Liu, L. C. Chang, C.-H. Lin, and Y.-C. Chiu (2021), Equatorial ionization anomaly response to lunar phase and stratospheric sudden warming, Sci. Rep., 11, 14695, doi:10.1038/s41598-021-94326-x.Dst
    448. Wu, Z., Z. Su, N. Liu, Z. Gao, H. Zheng, Y. Wang, and S. Wang (2021), Off Equatorial Source of Magnetosonic Waves Extending Above the Lower Hybrid Resonance Frequency in the Inner Magnetosphere, Geophys. Res. Lett., 48(6), e91830, doi:10.1029/2020gl091830.SYM-H
    449. Xia, G., Y. Liu, T. Wei, Z. Wang, W. Huang, Z. Du, Z. Zhang, X. Wang, and C. Zhou (2021), Ionospheric TEC forecast model based on support vector machine with GPU acceleration in the China region, Adv. Space Res., 68(3), 1377, doi:10.1016/j.asr.2021.03.021.AE
    450. Xie, T., B. Chen, L. Wu, W. Dai, C. Kuang, and Z. Miao (2021), Detecting Seismo-Ionospheric Anomalies Possibly Associated With the 2019 Ridgecrest (California) Earthquakes by GNSS, CSES, and Swarm Observations, J. Geophys. Res. Space Physics, 126(9), e28761, doi:10.1029/2020ja028761.Dst
    451. Xue, Z., Z. Yuan, and X. Yu (2021), Prompt Emergence and Disappearance of EMIC Waves Driven by the Sequentially Enhanced Solar Wind Dynamic Pressure, Geophys. Res. Lett., 48(2), e91479, doi:10.1029/2020gl091479.SYM-H
    452. Yadav, S., et al. (2021), Study of an Equatorward Detachment of Auroral Arc From the Oval Using Ground-Space Observations and the BATS-R-US-CIMI Model, J. Geophys. Res. Space Physics, 126(12), e29080, doi:10.1029/2020ja029080.AE
    453. Yadav, S., K. Shiokawa, Y. Otsuka, M. Connors, and J.-P. St Maurice (2021), Multi Wavelength Imaging Observations of STEVE at Athabasca, Canada, J. Geophys. Res. Space Physics, 126(2), e8622, doi:10.1029/2020ja028622.AE
    454. Yagova, N., A. Kozlovsky, E. Fedorov, and O. Kozyreva (2021), Even moderate geomagnetic pulsations can cause fluctuations of foF2 frequency of the auroral ionosphere, Ann. Geophys., 39(3), 549, doi:10.5194/angeo-39-549-2021.DstAE
    455. Yahnin, A. G., et al. (2021), Evening Side EMIC Waves and Related Proton Precipitation Induced by a Substorm, J. Geophys. Res. Space Physics, 126(7), e29091, doi:10.1029/2020ja029091.DstAESYM-H
    456. Yan, L., X. Cao, M. Hua, B. Ni, and Y. Zhang (2021), Statistics of Magnetosonic Waves in the Slot Region Observed by Van Allen Probes, Geophys. Res. Lett., 48(14), e94015, doi:10.1029/2021gl094015.Dst
    457. Yang, X., and L. Wang (2021), A Study of the Performances of Widely Used External Magnetic Field Models in the Outer Zone of the Earth's Radiation Belts by Comparing the Field Observations From Van Allen Probe-A and the Model Estimations, Space Weather, 19(12), e2021SW002722, doi:10.1029/2021sw002722.DstSYM-H
    458. Yang, Y., et al. (2021), CSES High Precision Magnetometer Data Products and Example Study of an Intense Geomagnetic Storm, J. Geophys. Res. Space Physics, 126(4), e28026, doi:10.1029/2020ja028026.Dst
    459. Yermolaev, Y. I., I. G. Lodkina, A. A. Khokhlachev, M. Y. Yermolaev, M. O. Riazantseva, L. S. Rakhmanova, N. L. Borodkova, O. V. Sapunova, and A. V. Moskaleva (2021), Drop of Solar Wind at the End of the 20th Century, J. Geophys. Res. Space Physics, 126(9), e29618, doi:10.1029/2021ja029618.Dst
    460. Yermolaev, Y. I., I. G. Lodkina, L. A. Dremukhina, M. Y. Yermolaev, and A. A. Khokhlachev (2021), What Solar–Terrestrial Link Researchers Should Know about Interplanetary Drivers, Universe, 7(5), 138, doi:10.3390/universe7050138.DstAE
    461. Yi, J., S. Fu, B. Ni, X. Gu, M. Hua, Z. Xiang, X. Cao, R. Shi, and Y. Zhao (2021), Global Distribution of Reversed Energy Spectra of Ring Current Protons Based on Van Allen Probes Observations, Geophys. Res. Lett., 48(4), e91559, doi:10.1029/2020gl091559.DstAE
    462. Yi, W., I. M. Reid, X. Xue, D. J. Murphy, R. A. Vincent, Z. Zou, T. Chen, G. Wang, and X. Dou (2021), First Observations of Antarctic Mesospheric Tidal Wind Responses to Recurrent Geomagnetic Activity, Geophys. Res. Lett., 48(4), e89957, doi:10.1029/2020gl089957.AE
    463. Yin, Z.-F., X.-Z. Zhou, Q.-G. Zong, Z.-Y. Liu, C. Yue, Y. Xiong, L. Xie, Y.-F. Wang, and S.-Y. Fu (2021), Inner Magnetospheric Magnetic Dips and Energetic Protons Trapped Therein: Multi Spacecraft Observations and Simulations, Geophys. Res. Lett., 48(7), e92567, doi:10.1029/2021gl092567.AE
    464. Yoshioka, K., et al. (2021), Long-Term Monitoring of Energetic Protons at the Bottom of Earth's Radiation Belt, Space Weather, 19(1), e02611, doi:10.1029/2020sw002611.Dst
    465. Younas, W., C. Amory-Mazaudier, M. Khan, and M. Le Huy (2021), Magnetic Signatures of Ionospheric Disturbance Dynamo for CME and HSSWs Generated Storms, Space Weather, 19(9), e02825, doi:10.1029/2021sw002825.AE
    466. Yu, B., C. J. Scott, X. Xue, X. Yue, Y. Chi, X. Dou, and M. Lockwood (2021), A Signature of 27 day Solar Rotation in the Concentration of Metallic Ions within the Terrestrial Ionosphere, Astrophys. J., 916(2), 106, doi:10.3847/1538-4357/ac0886.Dst
    467. Yu, T., W. Wang, Z. Ren, J. Yue, X. Yue, and M. He (2021), Middle-Low Latitude Neutral Composition and Temperature Responses to the 20 and 21 November 2003 Superstorm From GUVI Dayside Limb Measurements, J. Geophys. Res. Space Physics, 126(8), e28427, doi:10.1029/2020ja028427.AE
    468. Yu, T., W. Wang, Z. Ren, X. Cai, X. Yue, and M. He (2021), The Response of Middle Thermosphere (∼160 km) Composition to the November 20 and 21, 2003 Superstorm, J. Geophys. Res. Space Physics, 126(10), e29449, doi:10.1029/2021ja029449.DstAE
    469. Yuan, L., and S. Jin (2021), Observational Evidence and Formation Mechanism of Low Density Cells in the Upper Thermosphere on September 8, 2017, J. Geophys. Res. Space Physics, 126(2), e28915, doi:10.1029/2020ja028915.AESYM-H
    470. Yue, C., X.-Z. Zhou, J. Bortnik, Q.-G. Zong, Y. Li, J. Ren, G. D. Reeves, and H. E. Spence (2021), Sustained Oxygen Spectral Gaps and Their Dynamic Evolution in the Inner Magnetosphere, J. Geophys. Res. Space Physics, 126(4), e29092, doi:10.1029/2020ja029092.DstAE
    471. Yusof, K. A., M. Abdullah, N. S. A. Hamid, S. Ahadi, and A. Yoshikawa (2021), Correlations between Earthquake Properties and Characteristics of Possible ULF Geomagnetic Precursor over Multiple Earthquakes, Universe, 7(1), 20, doi:10.3390/universe7010020.Dst
    472. Zenchenko, T. A., and T. K. Breus (2021), The Possible Effect of Space Weather Factors on Various Physiological Systems of the Human Organism, Atmosphere, 12(3), 346, doi:10.3390/atmos12030346.Dst
    473. Zewdie, G. K., C. Valladares, M. B. Cohen, D. J. Lary, D. Ramani, and G. M. Tsidu (2021), Data-Driven Forecasting of Low-Latitude Ionospheric Total Electron Content Using the Random Forest and LSTM Machine Learning Methods, Space Weather, 19(6), e2020SW002639, doi:10.1029/2020sw002639.DstAESYM-HSYM-DASY-HASY-D
    474. Zhai, C., X. Shi, W. Wang, M. D. Hartinger, Y. Yao, W. Peng, D. Lin, J. M. Ruohoniemi, and J. B. H. Baker (2021), Characterization of High-m ULF Wave Signatures in GPS TEC Data, Geophys. Res. Lett., 48(14), e94282, doi:10.1029/2021gl094282.DstAE
    475. Zhan, W., S. R. Kaeppler, M. F. Larsen, A. Reimer, and R. Varney (2021), An Investigation of Auroral E Region Energy Exchange Using Poker Flat Incoherent Scatter Radar Observations During Fall Equinox Conditions, J. Geophys. Res. Space Physics, 126(10), e29371, doi:10.1029/2021ja029371.AE
    476. Zhang, D., et al. (2021), Solar and Geomagnetic Activity Impact on Occurrence and Spatial Size of Cold and Hot Polar Cap Patches, Geophys. Res. Lett., 48(18), e94526, doi:10.1029/2021gl094526.AE
    477. Zhang, H., G. Peng, C. Shen, and Y. Wu (2021), A new perspective and explanation for the formation of plasmaspheric shoulder structures, Ann. Geophys., 39(4), 701, doi:10.5194/angeo-39-701-2021.Dst
    478. Zhang, K., H. Wang, J. Liu, Z. Zheng, Y. He, J. Gao, L. Sun, and Y. Zhong (2021), Dynamics of the Tongue of Ionizations During the Geomagnetic Storm on September 7, 2015, J. Geophys. Res. Space Physics, 126(6), e29038, doi:10.1029/2020ja029038.Dst
    479. Zhang, K., X. Li, H. Zhao, Z. Xiang, L. Y. Khoo, W. Zhang, B. Hogan, and M. A. Temerin (2021), Upper Limit of Electron Fluxes Observed in the Radiation Belts, J. Geophys. Res. Space Physics, 126(1), e8511, doi:10.1029/2020ja028511.Dst
    480. Zhang, Q., Y. C.-M. Liu, Q.-H. Zhang, Z.-Y. Xing, and Y.-Z. Ma (2021), Longitudinal Evolution of the Velocity of Subauroral Polarization Streams (SAPS) in Different Phases of Magnetic Storms: SuperDARN Observations, J. Geophys. Res. Space Physics, 126(9), e29340, doi:10.1029/2021ja029340.AESYM-H
    481. Zhang, Q.-H., et al. (2021), A space hurricane over the Earth's polar ionosphere, Nat. Commun., 12, 1207, doi:10.1038/s41467-021-21459-y.DstAESYM-HSYM-D
    482. Zhang, S., et al. (2021), A Concise Empirical Formula for the Field Aligned Distribution of Auroral Kilometeric Radiation Based on Arase Satellite and Van Allen Probes, Geophys. Res. Lett., 48(8), e92805, doi:10.1029/2021gl092805.AESYM-H
    483. Zhang, S., et al. (2021), Determining the Global Scale Size of Chorus Waves in the Magnetosphere, J. Geophys. Res. Space Physics, 126(11), e29569, doi:10.1029/2021ja029569.AE
    484. Zhang, S.-R., P. J. Erickson, L. C. Gasque, E. Aa, W. Rideout, J. Vierinen, L. P. Goncharenko, and A. J. Coster (2021), Electrified Postsunrise Ionospheric Perturbations at Millstone Hill, Geophys. Res. Lett., 48(18), e95151, doi:10.1029/2021gl095151.AE
    485. Zhang, X.-J., D. Mourenas, X.-C. Shen, M. Qin, A. V. Artemyev, Q. Ma, W. Li, M. K. Hudson, and V. Angelopoulos (2021), Dependence of Relativistic Electron Precipitation in the Ionosphere on EMIC Wave Minimum Resonant Energy at the Conjugate Equator, J. Geophys. Res. Space Physics, 126(5), e29193, doi:10.1029/2021ja029193.Dst
    486. Zhang, Y., L. J. Paxton, and R. Schaefer (2021), Ionospheric and Thermospheric Contributions in TIMED/GUVI O 135.6 nm Radiances, J. Geophys. Res. Space Physics, 126(9), e29333, doi:10.1029/2021ja029333.Dst
    487. Zhang, Y., L. Paxton, W. Wang, and C. Huang (2021), Periodic Variations in Solar Wind and Responses of the Magnetosphere and Thermosphere in March 2017, J. Geophys. Res. Space Physics, 126(8), e29387, doi:10.1029/2021ja029387.AESYM-H
    488. Zhang, Y., X. Liu, J. Guo, K. Shi, M. Zhou, and F. Wang (2021), Co-Seismic Ionospheric Disturbance with Alaska Strike-Slip Mw7.9 Earthquake on 23 January 2018 Monitored by GPS, Atmosphere, 12(1), 83, doi:10.3390/atmos12010083.Dst
    489. Zhang, Y., Z. Wu, J. Feng, T. Xu, Z. Deng, M. Ou, and W. Xiong (2021), Time delay of ionospheric TEC storms to geomagnetic storms and pre-storm disturbance events in East Asia, Adv. Space Res., 67(5), 1535, doi:10.1016/j.asr.2020.11.026.DstAE
    490. Zhang, Z., Z. Xiang, Y. Wang, B. Ni, and X. Li (2021), Electron Acceleration by Magnetosonic Waves in the Deep Inner Belt (L = 1.5-2) Region During Geomagnetic Storm of August 2018, J. Geophys. Res. Space Physics, 126(12), e29797, doi:10.1029/2021ja029797.Dst
    491. Zhao, H., et al. (2021), Van Allen Probes Observations of Multi-MeV Electron Drift-Periodic Flux Oscillations in Earth's Outer Radiation Belt During the March 2017 Event, J. Geophys. Res. Space Physics, 126(8), e29284, doi:10.1029/2021ja029284.AESYM-H
    492. Zhao, J., et al. (2021), Vortex Generation and Auroral Response to a Solar Wind Dynamic Pressure Increase: Event Analyses, J. Geophys. Res. Space Physics, 126(3), e28753, doi:10.1029/2020ja028753.AESYM-H
    493. Zhao, M.-X., G.-M. Le, Q. Li, G.-A. Liu, and T. Mao (2021), Dependence of Great Geomagnetic Storm (∆ SYM-H≤–200 nT) on Associated Solar Wind Parameters, Sol. Phys., 296(4), 66, doi:10.1007/s11207-021-01816-2.DstSYM-H
    494. Zhao, S. Q., et al. (2021), Observations of an Electron-Cold Ion Component Reconnection at the Edge of an Ion-Scale Antiparallel Reconnection at the Dayside Magnetopause, J. Geophys. Res. Space Physics, 126(10), e29390, doi:10.1029/2021ja029390.AE
    495. Zhelavskaya, I. S., N. A. Aseev, and Y. Y. Shprits (2021), A Combined Neural Network and Physics Based Approach for Modeling Plasmasphere Dynamics, J. Geophys. Res. Space Physics, 126(3), e28077, doi:10.1029/2020ja028077.Dst
    496. Zhou, M., H. Y. Man, X. H. Deng, Y. Pang, Y. Khotyaintsev, G. Lapenta, Y. Y. Yi, Z. H. Zhong, and W. Q. Ma (2021), Observations of Secondary Magnetic Reconnection in the Turbulent Reconnection Outflow, Geophys. Res. Lett., 48(4), e91215, doi:10.1029/2020gl091215.Dst
    497. Zhou, Q., Z. Jiang, C. Yang, Y. He, S. Liu, and F. Xiao (2021), Correlated Observation on Global Distributions of Magnetosonic Waves and Proton Rings in the Radiation Belts, J. Geophys. Res. Space Physics, 126(1), e28354, doi:10.1029/2020ja028354.AE
    498. Zhou, S., et al. (2021), A Possible Mechanism on the Detachment Between a Subauroral Proton Arc and the Auroral Oval, J. Geophys. Res. Space Physics, 126(2), e28493, doi:10.1029/2020ja028493.DstSYM-H
    499. Zhou, Y.-J., F. He, X.-X. Zhang, Z.-H. Yao, Y. Wei, and Y.-L. Zhang (2021), Statistical Characteristics of Giant Undulations During Geomagnetic Storms, Geophys. Res. Lett., 48(13), e93098, doi:10.1029/2021gl093098.DstAESYM-HSYM-D
    500. Zhu, H., L. Chen, A. V. Artemyev, X.-J. Zhang, and A. W. Breneman (2021), Superposed Epoch Analyses of Electron-Driven and Proton-Driven Magnetic Dips, Geophys. Res. Lett., 48(21), e94934, doi:10.1029/2021gl094934.AE
    501. Zhu, M., Y. Yu, and V. K. Jordanova (2021), Simulating the effects of warm O+ ions on the growth of electromagnetic ion cyclotron (EMIC) waves, J. Atmos. Sol.-Terr. Phys., 224, 105737, doi:10.1016/j.jastp.2021.105737.DstAESYM-H
    502. Zhu, M., Y. Yu, X. Tian, P. R. Shreedevi, and V. K. Jordanova (2021), On the Ion Precipitation due to Field Line Curvature (FLC) and EMIC Wave Scattering and Their Subsequent Impact on Ionospheric Electrodynamics, J. Geophys. Res. Space Physics, 126(3), e28812, doi:10.1029/2020ja028812.DstAE
    503. Zhu, Q., et al. (2021), Empirical Loss Timescales of Slot Region Electrons due to Plasmaspheric Hiss Based on Van Allen Probes Observations, J. Geophys. Res. Space Physics, 126(4), e29057, doi:10.1029/2020ja029057.AE
    504. Zong, Q.-G., C. Yue, and S.-Y. Fu (2021), Shock Induced Strong Substorms and Super Substorms: Preconditions and Associated Oxygen Ion Dynamics, Space Sci. Rev., 217(2), 33, doi:10.1007/s11214-021-00806-x.DstAESYM-H
    505. Zou, Y., B. M. Walsh, X. Shi, L. Lyons, J. Liu, V. Angelopoulos, J. M. Ruohoniemi, A. J. Coster, and M. G. Henderson (2021), Geospace Plume and Its Impact on Dayside Magnetopause Reconnection Rate, J. Geophys. Res. Space Physics, 126(6), e29117, doi:10.1029/2021ja029117.SYM-H
    506. Zou, Y., L. Lyons, M. Conde, R. Varney, V. Angelopoulos, and S. Mende (2021), Effects of Substorms on High Latitude Upper Thermospheric Winds, J. Geophys. Res. Space Physics, 126(1), e28193, doi:10.1029/2020ja028193.DstAE
    507. Şentürk, E., M. Arqim Adil, and M. Saqib (2021), Ionospheric total electron content response to annular solar eclipse on June 21, 2020, Adv. Space Res., 67(6), 1937, doi:10.1016/j.asr.2020.12.024.Dst

    2020 389 papers↑ top

    1. Aa, E., et al. (2020), Coordinated Ground-Based and Space-Borne Observations of Ionospheric Response to the Annular Solar Eclipse on 26 December 2019, J. Geophys. Res. Space Physics, 125(11), e28296, doi:10.1029/2020ja028296.DstSYM-H
    2. Aa, E., P. J. Erickson, S.-R. Zhang, S. Zou, A. J. Coster, L. P. Goncharenko, and J. C. Foster (2020), A Statistical Study of the Subauroral Polarization Stream Over North American Sector Using the Millstone Hill Incoherent Scatter Radar 1979-2019 Measurements, J. Geophys. Res. Space Physics, 125(10), e28584, doi:10.1029/2020ja028584.SYM-H
    3. Aa, E., S. Zou, R. Eastes, D. K. Karan, S.-R. Zhang, P. J. Erickson, and A. J. Coster (2020), Coordinated Ground-Based and Space-Based Observations of Equatorial Plasma Bubbles, J. Geophys. Res. Space Physics, 125(1), e27569, doi:10.1029/2019ja027569.SYM-HASY-H
    4. Abunin, A. A., M. A. Abunina, A. V. Belov, and I. M. Chertok (2020), Peculiar Solar Sources and Geospace Disturbances on 20-26 August 2018, Sol. Phys., 295(1), 7, doi:10.1007/s11207-019-1574-8.Dst
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    359. Yu, Y., X. Tian, and V. K. Jordanova (2020), The Effects of Field Line Curvature (FLC) Scattering on Ring Current Dynamics and Isotropic Boundary, J. Geophys. Res. Space Physics, 125(8), e27830, doi:10.1029/2020ja027830.DstAESYM-H
    360. Yuan, H., H. Zhang, J. Lu, C. Zhu, and M. Wang (2020), Flow Vortex-Associated Downward Field-Aligned Current Retreating in the Near-Earth Plasma Sheet, Earth Space Sci., 7(2), e00916, doi:10.1029/2019ea000916.AE
    361. Yue, C., et al. (2020), Episodic Occurrence of Field-Aligned Energetic Ions on the Dayside, Geophys. Res. Lett., 47(2), e86384, doi:10.1029/2019gl086384.DstAE
    362. Zakharenkova, I., and I. Cherniak (2020), When Plasma Streams Tie up Equatorial Plasma Irregularities with Auroral Ones, Space Weather, 18(2), e02375, doi:10.1029/2019sw002375.DstAESYM-H
    363. Zeng, C., C. Wang, S. Duan, L. Dai, S. A. Fuselier, J. L. Burch, R. B. Torbert, and B. L. Giles (2020), Statistical Study of Oxygen Ions Abundance and Spatial Distribution in the Dayside Magnetopause Boundary Layer: MMS Observations, J. Geophys. Res. Space Physics, 125(7), e27323, doi:10.1029/2019ja027323.DstSYM-H
    364. Zhai, C., G. Lu, Y. Yao, W. Wang, S. Zhang, J. Liu, W. Peng, J. Kong, and J. Chen (2020), 3-D Tomographic Reconstruction of SED Plume During 17 March 2013 Storm, J. Geophys. Res. Space Physics, 125(11), e28257, doi:10.1029/2020ja028257.AESYM-H
    365. Zhang, B., O. J. Brambles, W. Lotko, and J. G. Lyon (2020), Is Nightside Outflow Required to Induce Magnetospheric Sawtooth Oscillations, Geophys. Res. Lett., 47(6), e86419, doi:10.1029/2019gl086419.AE
    366. Zhang, D., W. Liu, X. Li, T. E. Sarris, Y. Wang, C. Xiao, Z. Zhang, and J. R. Wygant (2020), Relation Between Shock-Related Impulse and Subsequent ULF Wave in the Earth's Magnetosphere, Geophys. Res. Lett., 47(23), e90027, doi:10.1029/2020gl090027.SYM-H
    367. Zhang, H., et al. (2020), Relativistic Electron Flux Prediction at Geosynchronous Orbit Based on the Neural Network and the Quantile Regression Method, Space Weather, 18(9), e2020SW002445, doi:10.1029/2020sw002445.DstAE
    368. Zhang, J. J., et al. (2020), First Observation of Ionospheric Convection From the Jiamusi HF Radar During a Strong Geomagnetic Storm, Earth Space Sci., 7(1), e00911, doi:10.1029/2019ea000911.SYM-H
    369. Zhang, J. J., Y. Q. Yu, C. Wang, D. Du, D. Wei, and L. G. Liu (2020), Measurements and Simulations of the Geomagnetically Induced Currents in Low-Latitude Power Networks During Geomagnetic Storms, Space Weather, 18(8), e2020SW002549, doi:10.1029/2020sw002549.DstSYM-H
    370. Zhang, K., X. Li, Z. Xiang, L. Y. Khoo, H. Zhao, M. D. Looper, M. A. Temerin, and J.-A. Sauvaud (2020), Long-Term Variations of Quasi-Trapped and Trapped Electrons in the Inner Radiation Belt Observed by DEMETER and SAMPEX, J. Geophys. Res. Space Physics, 125(9), e28086, doi:10.1029/2020ja028086.Dst
    371. Zhang, Q., Y. C.-M. Liu, Q.-H. Zhang, Z.-Y. Xing, Y. Wang, and Y.-Z. Ma (2020), Statistical Study of Ion Upflow Associated with Subauroral Polarization Streams (SAPS) at Substorm Time, J. Geophys. Res. Space Physics, 125(3), e27163, doi:10.1029/2019ja027163.DstAE
    372. Zhang, R., et al. (2020), Multiple Technique Observations of the Ionospheric Responses to the 21 June 2020 Solar Eclipse, J. Geophys. Res. Space Physics, 125(12), e28450, doi:10.1029/2020ja028450.DstAE
    373. Zhang, S., L. He, and L. Wu (2020), Statistical Study of Loss of GPS Signals Caused by Severe and Great Geomagnetic Storms, J. Geophys. Res. Space Physics, 125(9), e27749, doi:10.1029/2019ja027749.Dst
    374. Zhang, S., X. Shang, Y. He, S. Liu, and F. Xiao (2020), Dominant Roles of High Harmonics on Interactions Between AKR and Radiation Belt Relativistic Electrons, Geophys. Res. Lett., 47(16), e88421, doi:10.1029/2020gl088421.AESYM-H
    375. Zhang, X., V. Frolov, X. Shen, Y. Wang, C. Zhou, H. Lu, J. Huang, A. Ryabov, and D. Zhai (2020), The Electromagnetic Emissions and Plasma Modulations at Middle Latitudes Related to SURA-CSES Experiments in 2018, Radio Sci., 55(8), e2019RS007040, doi:10.1029/2019rs007040.AE
    376. Zhang, Y., Z. Wu, J. Feng, T. Xu, Z. Deng, and W. Zhen (2020), Statistical study of the time delay of ionospheric TEC storms to geomagnetic storms in Taoyuan, Taiwan, Adv. Space Res., 65(1), 86, doi:10.1016/j.asr.2019.09.017.Dst
    377. Zhang, Z., L. Chen, S. Liu, Y. Xiong, X. Li, Y. Wang, W. Chu, Z. Zeren, and X. Shen (2020), Chorus Acceleration of Relativistic Electrons in Extremely Low L-Shell During Geomagnetic Storm of August 2018, Geophys. Res. Lett., 47(4), e86226, doi:10.1029/2019gl086226.Dst
    378. Zhao, K., L. M. Kistler, E. J. Lund, N. Nowrouzi, N. Kitamura, and R. J. Strangeway (2020), Factors Controlling O+ and H+ Outflow in the Cusp During a Geomagnetic Storm: FAST/TEAMS Observations, Geophys. Res. Lett., 47(11), e86975, doi:10.1029/2020gl086975.SYM-H
    379. Zhima, Z., et al. (2020), Simultaneous Observations of ELF/VLF Rising-Tone Quasiperiodic Waves and Energetic Electron Precipitations in the High-Latitude Upper Ionosphere, J. Geophys. Res. Space Physics, 125(5), e27574, doi:10.1029/2019ja027574.Dst
    380. Zhou, S., Y. Chen, and J. Zhang (2020), A case study of isolated auroral spots based on DMSP data, J. Atmos. Sol.-Terr. Phys., 197, 105176, doi:10.1016/j.jastp.2019.105176.SYM-H
    381. Zhou, X.-Y., S. B. Rafol, R. G. Michell, D. Hampton, C. Geach, A. Berk, D. Lummerzheim, and Y.-T. He (2020), Balloons in the Earth's Auroral Science—BALBOA's Modern Exploration, J. Geophys. Res. Space Physics, 125(10), e27603, doi:10.1029/2019ja027603.AE
    382. Zhou, X.-Z., J. Ren, F. Yang, C. Yue, Q.-G. Zong, S.-Y. Fu, and Y. Wang (2020), On the Formation of Wedge-Like Ion Spectral Structures in the Nightside Inner Magnetosphere, J. Geophys. Res. Space Physics, 125(12), e28420, doi:10.1029/2020ja028420.AE
    383. Zhu, F., and Y. Jiang (2020), Investigation of GIM-TEC disturbances before M ≥ 6.0 inland earthquakes during 2003-2017, Sci. Rep., 10, 18038, doi:10.1038/s41598-020-74995-w.Dst
    384. Zhu, H., L. Chen, S. G. Claudepierre, and L. Zheng (2020), Direct Evidence of the Pitch Angle Scattering of Relativistic Electrons Induced by EMIC Waves, Geophys. Res. Lett., 47(4), e85637, doi:10.1029/2019gl085637.DstAESYM-H
    385. Zhu, P., C. Xie, C. Jiang, G. Yang, J. Liu, Z. Li, and Z. Zhao (2020), Ionospheric Behavior of foF2 over Chinese EIA Region and Its Comparison with IRI-2016, Universe, 6(8), 122, doi:10.3390/universe6080122.Dst
    386. Zou, Z., P. Zuo, B. Ni, Z. Gao, G. Wang, Z. Zhao, X. Feng, and F. Wei (2020), Two-step Dropouts of Radiation Belt Electron Phase Space Density Induced by a Magnetic Cloud Event, Astrophys. J. Lett., 895(1), L24, doi:10.3847/2041-8213/ab9179.AE
    387. Zou, Z., X. Xue, W. Yi, C. Shen, C. Yang, Y. Tang, T. Chen, and X. Dou (2020), Response of the High-latitude Upper Mesosphere to Energetic Electron Precipitation, Astrophys. J., 893(1), 55, doi:10.3847/1538-4357/ab7eb0.DstAE
    388. Özcan, O., S. Sağır, and R. Atıcı (2020), The relationship between TEC and Earth's magnetic field during quiet and disturbed days over Istanbul, Turkey, Adv. Space Res., 65(9), 2167, doi:10.1016/j.asr.2020.01.035.DstSYM-H
    389. Švanda, M., D. Mourenas, K. Žertová, and T. Výbošt'oková (2020), Immediate and delayed responses of power lines and transformers in the Czech electric power grid to geomagnetic storms, J. Space Weather Space Clim., 10, 26, doi:10.1051/swsc/2020025.DstAESYM-HSYM-D

    2019 393 papers↑ top

    1. Aa, E., S. Zou, A. Ridley, S. Zhang, A. J. Coster, P. J. Erickson, S. Liu, and J. Ren (2019), Merging of Storm Time Midlatitude Traveling Ionospheric Disturbances and Equatorial Plasma Bubbles, Space Weather, 17(2), 285, doi:10.1029/2018sw002101.SYM-HSYM-D
    2. Adebiyi, S. J., et al. (2019), Variation of Digisonde-Derived Scale Height During Quiet and Disturbed Geomagnetic Conditions Over an African Equatorial Station, Radio Sci., 54(7), 552, doi:10.1029/2018rs006762.Dst
    3. Adero Ochieng, A., G. Vichare, P. Baki, P. Cilliers, P. Kotze, C. Xiong, and A. K. Sinha (2019), Storm-time mesoscale field-aligned currents and interplanetary parameters, J. Atmos. Sol.-Terr. Phys., 195, 105131, doi:10.1016/j.jastp.2019.105131.AE
    4. Adhikari, B., N. Adhikari, B. Aryal, N. P. Chapagain, and I. Horvath (2019), Impacts on Proton Fluxes Observed During Different Interplanetary Conditions, Sol. Phys., 294(5), 61, doi:10.1007/s11207-019-1450-6.Dst
    5. Adhikari, B., N. Sapkota, S. Dahal, B. Bhattarai, K. Khanal, and N. P. Chapagain (2019), Spectral characteristic of geomagnetically induced current during geomagnetic storms by wavelet techniques, J. Atmos. Sol.-Terr. Phys., 192, 104777, doi:10.1016/j.jastp.2018.01.020.AESYM-H
    6. Agapitov, O., D. Mourenas, A. Artemyev, G. Hospodarsky, and J. W. Bonnell (2019), Time Scales for Electron Quasi-linear Diffusion by Lower-Band Chorus Waves: The Effects of ωpece Dependence on Geomagnetic Activity, Geophys. Res. Lett., 46(12), 6178, doi:10.1029/2019gl083446.AE
    7. Agyei-Yeboah, E., I. Paulino, A. F. Medeiros, R. A. Buriti, A. R. Paulino, P. Essien, S. O. Lomotey, H. Takahashi, and C. M. Wrasse (2019), Seasonal variation of plasma bubbles during solar cycle 23-24 over the Brazilian equatorial region, Adv. Space Res., 64(7), 1365, doi:10.1016/j.asr.2019.06.041.Dst
    8. Allison, H. J., R. B. Horne, S. A. Glauert, and G. Del Zanna (2019), On the Importance of Gradients in the Low-Energy Electron Phase Space Density for Relativistic Electron Acceleration, J. Geophys. Res. Space Physics, 124(4), 2628, doi:10.1029/2019ja026516.Dst
    9. Ameri, D., and E. Valtonen (2019), Potential role of energetic particle observations in geomagnetic storm forecasting, Adv. Space Res., 64(3), 801, doi:10.1016/j.asr.2019.05.012.Dst
    10. Andreeva, V. A., and N. A. Tsyganenko (2019), Empirical Modeling of the Geomagnetosphere for SIR and CME-Driven Magnetic Storms, J. Geophys. Res. Space Physics, 124(7), 5641, doi:10.1029/2018ja026008.DstAESYM-H
    11. Angelopoulos, V., et al. (2019), The Space Physics Environment Data Analysis System (SPEDAS), Space Sci. Rev., 215(1), 9, doi:10.1007/s11214-018-0576-4.AE
    12. Armano, M., et al. (2019), Forbush Decreases and <2 Day GCR Flux Non-recurrent Variations Studied with LISA Pathfinder, Astrophys. J., 874(2), 167, doi:10.3847/1538-4357/ab0c99.Dst
    13. Aryal, S., G. Geddes, S. C. Finn, S. Mrak, I. Galkin, I. Cnossen, T. Cook, and S. Chakrabarti (2019), Multispectral and Multi-instrument Observation of TIDs Following the Total Solar Eclipse of 21 August 2017, J. Geophys. Res. Space Physics, 124(5), 3761, doi:10.1029/2018ja026333.Dst
    14. Arıkan, F., U. Sezen, and T. L. Gulyaeva (2019), Comparison of IRI-2016 F2 Layer Model Parameters with Ionosonde Measurements, J. Geophys. Res. Space Physics, 124(10), 8092, doi:10.1029/2019ja027048.AE
    15. Aseev, N. A., and Y. Y. Shprits (2019), Reanalysis of Ring Current Electron Phase Space Densities Using Van Allen Probe Observations, Convection Model, and Log-Normal Kalman Filter, Space Weather, 17(4), 619, doi:10.1029/2018sw002110.Dst
    16. Aseev, N. A., Y. Y. Shprits, D. Wang, J. Wygant, A. Y. Drozdov, A. C. Kellerman, and G. D. Reeves (2019), Transport and Loss of Ring Current Electrons Inside Geosynchronous Orbit During the 17 March 2013 Storm, J. Geophys. Res. Space Physics, 124(2), 915, doi:10.1029/2018ja026031.DstSYM-H
    17. Asmare Tariku, Y. (2019), Assessment of improvement of the IRI model over Ethiopia for the modeling of the variability of TEC during the period 2013-2016, Adv. Space Res., 63(5), 1634, doi:10.1016/j.asr.2018.11.014.Dst
    18. Badruddin, B., O. P. M. Aslam, M. Derouich, H. Asiri, and K. Kudela (2019), Forbush Decreases and Geomagnetic Storms During a Highly Disturbed Solar and Interplanetary Period, 4-10 September 2017, Space Weather, 17(3), 487, doi:10.1029/2018sw001941.DstSYM-H
    19. Balan, N., Q.-H. Zhang, K. Shiokawa, R. Skoug, Z. Xing, S. Tulasi Ram, and Y. Otsuka (2019), IpsDst of Dst Storms Applied to Ionosphere-Thermosphere Storms and Low-Latitude Aurora, J. Geophys. Res. Space Physics, 124(11), 9552, doi:10.1029/2019ja027080.DstAE
    20. Balan, N., Q.-H. Zhang, Z. Xing, R. Skoug, K. Shiokawa, H. Lühr, S. Tulasi Ram, Y. Otsuka, and L. Zhao (2019), Capability of Geomagnetic Storm Parameters to Identify Severe Space Weather, Astrophys. J., 887(1), 51, doi:10.3847/1538-4357/ab5113.DstAE
    21. Bamba, Y., S. Inoue, and K. Hayashi (2019), The Role of a Tiny Brightening in a Huge Geoeffective Solar Eruption Leading to the St. Patrick’s Day Storm, Astrophys. J., 874(1), 73, doi:10.3847/1538-4357/ab06ff.Dst
    22. Banerjee, A., A. Bej, T. N. Chatterjee, and A. Majumdar (2019), An SOC Approach to Study the Solar Wind-Magnetosphere Energy Coupling, Earth Space Sci., 6(4), 565, doi:10.1029/2018ea000468.DstAE
    23. Barani, M., W. Tu, T. Sarris, K. Pham, and R. J. Redmon (2019), Estimating the Azimuthal Mode Structure of ULF Waves Based on Multiple GOES Satellite Observations, J. Geophys. Res. Space Physics, 124(7), 5009, doi:10.1029/2019ja026927.DstAESYM-HSYM-D
    24. Besliu-Ionescu, D., D.-C. Talpeanu, M. Mierla, and G. M. Muntean (2019), On the prediction of geoeffectiveness of CMEs during the ascending phase of SC24 using a logistic regression method, J. Atmos. Sol.-Terr. Phys., 193, 105036, doi:10.1016/j.jastp.2019.04.017.Dst
    25. Bezděková, B., F. Němec, M. Parrot, M. Hajoš, J. Záhlava, and O. Santolík (2019), Dependence of Properties of Magnetospheric Line Radiation and Quasiperiodic Emissions on Solar Wind Parameters and Geomagnetic Activity, J. Geophys. Res. Space Physics, 124(4), 2552, doi:10.1029/2018ja026378.DstAE
    26. Bharti, G., M. V. Sunil Krishna, and V. Singh (2019), Radiative cooling due to NO at 5.3 μ m emission as observed by TIMED/SABER over Asian sector, Adv. Space Res., 64(10), 1989, doi:10.1016/j.asr.2019.07.016.Dst
    27. Bhaskar, A., and G. Vichare (2019), Forecasting of SYMH and ASYH indices for geomagnetic storms of solar cycle 24 including St. Patrick's day, 2015 storm using NARX neural network, J. Space Weather Space Clim., 9, A12, doi:10.1051/swsc/2019007.SYM-HASY-H
    28. Bhattacharyya, A., M. Fedrizzi, T. J. Fuller-Rowell, P. Gurram, B. Kakad, S. Sripathi, and S. Sunda (2019), Effect of Magnetic Storm Related Thermospheric Changes on the Evolution of Equatorial Plasma Bubbles, J. Geophys. Res. Space Physics, 124(3), 2256, doi:10.1029/2018ja025995.DstAESYM-H
    29. Bingham, S. T., C. G. Mouikis, L. M. Kistler, K. W. Paulson, C. J. Farrugia, C. L. Huang, H. E. Spence, G. D. Reeves, and C. Kletzing (2019), The Storm Time Development of Source Electrons and Chorus Wave Activity During CME- and CIR-Driven Storms, J. Geophys. Res. Space Physics, 124(8), 6438, doi:10.1029/2019ja026689.Dst
    30. Bingley, L., V. Angelopoulos, D. Sibeck, X. Zhang, and A. Halford (2019), The Evolution of a Pitch-Angle "Bite-Out" Scattering Signature Caused by EMIC Wave Activity: A Case Study, J. Geophys. Res. Space Physics, 124(7), 5042, doi:10.1029/2018ja026292.AE
    31. Biswas, T., S. Ghosh, A. Paul, and S. Sarkar (2019), Interfrequency Performance Characterizations of GPS During Signal Outages From an Anomaly Crest Location, Space Weather, 17(6), 803, doi:10.1029/2018sw002105.Dst
    32. Blagoveshchensky, D. V., and M. A. Sergeeva (2019), Impact of geomagnetic storm of September 7-8, 2017 on ionosphere and HF propagation: A multi-instrument study, Adv. Space Res., 63(1), 239, doi:10.1016/j.asr.2018.07.016.DstAE
    33. Blagoveshchensky, D. V., M. A. Sergeeva, and P. Corona-Romero (2019), Features of the magnetic disturbance on September 7-8, 2017 by geophysical data, Adv. Space Res., 64(1), 171, doi:10.1016/j.asr.2019.03.037.DstAE
    34. Bolaji, O. S., S. J. Adebiyi, and J. B. Fashae (2019), Characterization of ionospheric irregularities at different longitudes during quiet and disturbed geomagnetic conditions, J. Atmos. Sol.-Terr. Phys., 182, 93, doi:10.1016/j.jastp.2018.11.007.SYM-H
    35. Boroyev, R. N. (2019), Relationship between substorm activity and the interplanetary medium parameters during the main phase of strong magnetic storms, Adv. Space Res., 63(1), 302, doi:10.1016/j.asr.2018.09.001.DstAE
    36. Boteler, D. H. (2019), A 21st Century View of the March 1989 Magnetic Storm, Space Weather, 17(10), 1427, doi:10.1029/2019sw002278.Dst
    37. Boynton, R. J., O. A. Amariutei, Y. Y. Shprits, and M. A. Balikhin (2019), The System Science Development of Local Time-Dependent 40-keV Electron Flux Models for Geostationary Orbit, Space Weather, 17(6), 894, doi:10.1029/2018sw002128.DstSYM-H
    38. Bravo, M. A., I. S. Batista, J. R. Souza, and A. J. Foppiano (2019), Ionospheric Response to Disturbed Winds During the 29 October 2003 Geomagnetic Storm in the Brazilian Sector, J. Geophys. Res. Space Physics, 124(11), 9405, doi:10.1029/2019ja027187.DstAE
    39. Bruno, A., E. R. Christian, G. A. de Nolfo, I. G. Richardson, and J. M. Ryan (2019), Spectral Analysis of the September 2017 Solar Energetic Particle Events, Space Weather, 17(3), 419, doi:10.1029/2018sw002085.Dst
    40. Cai, L., S. Oyama, A. Aikio, H. Vanhamäki, and I. Virtanen (2019), Fabry-Perot Interferometer Observations of Thermospheric Horizontal Winds During Magnetospheric Substorms, J. Geophys. Res. Space Physics, 124(5), 3709, doi:10.1029/2018ja026241.DstAE
    41. Cameron, T. G., B. Jackel, and D. M. Oliveira (2019), Using Mutual Information to Determine Geoeffectiveness of Solar Wind Phase Fronts With Different Front Orientations, J. Geophys. Res. Space Physics, 124(3), 1582, doi:10.1029/2018ja026080.AE
    42. Camporeale, E. (2019), The Challenge of Machine Learning in Space Weather: Nowcasting and Forecasting, Space Weather, 17(8), 1166, doi:10.1029/2018sw002061.DstAESYM-HASY-H
    43. Camporeale, E., X. Chu, O. V. Agapitov, and J. Bortnik (2019), On the Generation of Probabilistic Forecasts From Deterministic Models, Space Weather, 17(3), 455, doi:10.1029/2018sw002026.SYM-H
    44. Capannolo, L., et al. (2019), Direct Observation of Subrelativistic Electron Precipitation Potentially Driven by EMIC Waves, Geophys. Res. Lett., 46(22), 12,711, doi:10.1029/2019gl084202.AE
    45. Capannolo, L., et al. (2019), Energetic Electron Precipitation: Multievent Analysis of Its Spatial Extent During EMIC Wave Activity, J. Geophys. Res. Space Physics, 124(4), 2466, doi:10.1029/2018ja026291.AE
    46. Capman, N. S. S., L. E. Simms, M. J. Engebretson, M. A. Clilverd, C. J. Rodger, G. D. Reeves, M. R. Lessard, and J. Gjerloev (2019), Comparison of Multiple and Logistic Regression Analyses of Relativistic Electron Flux Enhancement at Geosynchronous Orbit Following Storms, J. Geophys. Res. Space Physics, 124(12), 10,246, doi:10.1029/2019ja027132.DstAE
    47. Castillo, A. M., Y. Y. Shprits, N. Ganushkina, A. Drozdov, N. Aseev, D. Wang, and S. Dubyagin (2019), Simulations of the inner magnetospheric energetic electrons using the IMPTAM-VERB coupled model, J. Atmos. Sol.-Terr. Phys., 191, 105050, doi:10.1016/j.jastp.2019.05.014.Dst
    48. Chakraborty, S., J. B. H. Baker, J. M. Ruohoniemi, B. Kunduri, N. Nishitani, and S. G. Shepherd (2019), A Study of SuperDARN Response to Co-occurring Space Weather Phenomena, Space Weather, 17(9), 1351, doi:10.1029/2019sw002179.AE
    49. Chang, T.-F., et al. (2019), ERG observations of drift echoes during a unique period of the satellite mission, Earth Planets Space, 71(1), 18, doi:10.1186/s40623-019-0999-5.AEASY-H
    50. Chen, H., X. Gao, Q. Lu, and S. Wang (2019), Analyzing EMIC Waves in the Inner Magnetosphere Using Long-Term Van Allen Probes Observations, J. Geophys. Res. Space Physics, 124(9), 7402, doi:10.1029/2019ja026965.AE
    51. Chen, M. W., C. L. Lemon, J. Hecht, S. Sazykin, R. A. Wolf, A. Boyd, and P. Valek (2019), Diffuse Auroral Electron and Ion Precipitation Effects on RCM-E Comparisons With Satellite Data During the 17 March 2013 Storm, J. Geophys. Res. Space Physics, 124(6), 4194, doi:10.1029/2019ja026545.SYM-H
    52. Chen, S., L. Chai, K. Xu, Y. Wei, Z. Rong, and W. Wan (2019), Estimation of the Occurrence Probability of Extreme Geomagnetic Storms by Applying Extreme Value Theory to Aa Index, J. Geophys. Res. Space Physics, 124(12), 9943, doi:10.1029/2019ja026947.Dst
    53. Chen, Y., G. D. Reeves, X. Fu, and M. Henderson (2019), PreMevE: New Predictive Model for Megaelectron-Volt Electrons Inside Earth's Outer Radiation Belt, Space Weather, 17(3), 438, doi:10.1029/2018sw002095.Dst
    54. Chen, Y., Q. Zhou, Y. He, C. Yang, S. Liu, Z. Gao, and F. Xiao (2019), Global Occurrences of Electrostatic Electron Cyclotron Harmonic Waves Associated With Radiation Belt Electron Distributions, Geophys. Res. Lett., 46(10), 5028, doi:10.1029/2019gl082668.DstAE
    55. Chen, Y.-J., and R. A. Heelis (2019), Temporal Characteristic of the Mesoscale Plasma Flow Perturbations in the High-Latitude Ionosphere, J. Geophys. Res. Space Physics, 124(1), 459, doi:10.1029/2018ja026128.AE
    56. Cherniak, I., I. Zakharenkova, and S. Sokolovsky (2019), Multi-Instrumental Observation of Storm-Induced Ionospheric Plasma Bubbles at Equatorial and Middle Latitudes, J. Geophys. Res. Space Physics, 124(3), 1491, doi:10.1029/2018ja026309.AESYM-H
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    325. Tulasi Ram, S., et al. (2019), Three Different Episodes of Prompt Equatorial Electric Field Perturbations Under Steady Southward IMF Bz During St. Patrick's Day Storm, J. Geophys. Res. Space Physics, 124(12), 10,428, doi:10.1029/2019ja027069.AE
    326. Turner, D. L., et al. (2019), The Response of Earth's Electron Radiation Belts to Geomagnetic Storms: Statistics From the Van Allen Probes Era Including Effects From Different Storm Drivers, J. Geophys. Res. Space Physics, 124(2), 1013, doi:10.1029/2018ja026066.DstAESYM-H
    327. Tyler, E., A. Breneman, C. Cattell, J. Wygant, S. Thaller, and D. Malaspina (2019), Statistical Occurrence and Distribution of High-Amplitude Whistler Mode Waves in the Outer Radiation Belt, Geophys. Res. Lett., 46(5), 2328, doi:10.1029/2019gl082292.AE
    328. Tyssøy, H. N., A. Haderlein, M. I. Sandanger, and J. Stadsnes (2019), Intercomparison of the POES/MEPED Loss Cone Electron Fluxes With the CMIP6 Parametrization, J. Geophys. Res. Space Physics, 124(1), 628, doi:10.1029/2018ja025745.Dst
    329. Uma, G., P. S. Brahmanandam, S. Tulasi Ram, K.-H. Wu, and Y. H. Chu (2019), A complete solar cycle (2006-2016) studies of scale heights derived using COSMIC radio occultation retrieved electron density profiles, J. Atmos. Sol.-Terr. Phys., 182, 101, doi:10.1016/j.jastp.2018.11.010.Dst
    330. Uwamahoro, J. C., J. B. Habarulema, and D. Buresova (2019), Highlights about the performances of storm-time TEC modelling techniques for low/equatorial and mid-latitude locations, Adv. Space Res., 63(10), 3102, doi:10.1016/j.asr.2019.01.027.Dst
    331. Veenadhari, B., T. Kikuchi, S. Kumar, S. Tulasiram, D. Chakrabarty, Y. Ebihara, and G. D. Reeves (2019), Signatures of substorm related overshielding electric field at equatorial latitudes under steady southward IMF Bz during main phase of magnetic storm, Adv. Space Res., 64(10), 1975, doi:10.1016/j.asr.2019.04.001.DstAESYM-HSYM-DASY-H
    332. Venkatesh, K., A. K. Patra, N. Balan, P. R. Fagundes, S. Tulasi Ram, I. S. Batista, and B. W. Reinisch (2019), Superfountain Effect Linked With 17 March 2015 Geomagnetic Storm Manifesting Distinct F3 Layer, J. Geophys. Res. Space Physics, 124(7), 6127, doi:10.1029/2019ja026721.Dst
    333. Vichare, G., N. Thomas, K. Shiokawa, A. Bhaskar, and A. K. Sinha (2019), Spatial Gradients in Geomagnetic Storm Time Currents Observed by Swarm Multispacecraft Mission, J. Geophys. Res. Space Physics, 124(2), 982, doi:10.1029/2018ja025692.Dst
    334. Victor, N. J., D. Siingh, C. Panneerselvam, P. Elango, and V. S. Samy (2019), Fair-weather potential gradient and its coupling with ionospheric potential from three Antarctic stations: Case studies, J. Atmos. Sol.-Terr. Phys., 184, 5, doi:10.1016/j.jastp.2019.01.004.Dst
    335. Vineeth, C., A. Ajesh, T. K. Pant, and J. M. Ruohoniemi (2019), Response of Thermospheric Nightglow Emissions Over the Magnetic Equator to Prompt Penetration Electric Field Events, J. Geophys. Res. Space Physics, 124(7), 5918, doi:10.1029/2018ja026317.AE
    336. Visser, T., G. March, E. N. Doornbos, C. C. de Visser, and P. N. A. M. Visser (2019), Characterization of Thermospheric Vertical Wind Activity at 225- to 295-km Altitude Using GOCE Data and Validation Against Explorer Missions, J. Geophys. Res. Space Physics, 124(6), 4852, doi:10.1029/2019ja026568.AE
    337. Walach, M.-T., and A. Grocott (2019), SuperDARN Observations During Geomagnetic Storms, Geomagnetically Active Times, and Enhanced Solar Wind Driving, J. Geophys. Res. Space Physics, 124(7), 5828, doi:10.1029/2019ja026816.AESYM-H
    338. Wan, X., C. Xiong, H. Wang, K. Zhang, Z. Zheng, Y. He, and L. Yu (2019), A Statistical Study on the Climatology of the Equatorial Plasma Depletions Occurrence at Topside Ionosphere During Geomagnetic Disturbed Periods, J. Geophys. Res. Space Physics, 124(10), 8023, doi:10.1029/2019ja026926.SYM-H
    339. Wang, C.-P., S. A. Fuselier, M. Hairston, X.-J. Zhang, S. Zou, L. A. Avanov, R. J. Strangeway, N. Ahmadi, and J. Bortnik (2019), Event Studies of O+ Density Variability Within Quiet-Time Plasma Sheet, J. Geophys. Res. Space Physics, 124(6), 4168, doi:10.1029/2019ja026644.SYM-H
    340. Wang, D., and Y. Y. Shprits (2019), On How High-Latitude Chorus Waves Tip the Balance Between Acceleration and Loss of Relativistic Electrons, Geophys. Res. Lett., 46(14), 7945, doi:10.1029/2019gl082681.Dst
    341. Wang, G. Q., T. L. Zhang, M. Y. Wu, D. Schmid, J. B. Cao, and M. Volwerk (2019), Solar Wind Directional Change Triggering Flapping Motions of the Current Sheet: MMS Observations, Geophys. Res. Lett., 46(1), 64, doi:10.1029/2018gl080023.AE
    342. Wang, G., J. Shi, W. Bai, I. Galkin, Z. Wang, and Y. Sun (2019), Global ionospheric scintillations revealed by GPS radio occultation data with FY3C satellite before midnight during the March 2015 storm, Adv. Space Res., 63(10), 3119, doi:10.1016/j.asr.2019.01.028.Dst
    343. Wang, G., T. L. Zhang, Z. L. Gao, M. Y. Wu, G. Q. Wang, and D. Schmid (2019), Propagation of EMIC Waves Inside the Plasmasphere: A Two-Event Study, J. Geophys. Res. Space Physics, 124(11), 8396, doi:10.1029/2019ja027055.SYM-H
    344. Wang, H., H. Lühr, Z. Zheng, and K. Zhang (2019), Dependence of the Equatorial Electrojet on Auroral Activity and In Situ Solar Insulation, J. Geophys. Res. Space Physics, 124(12), 10,659, doi:10.1029/2019ja027320.AE
    345. Wang, H., Y. He, H. Lühr, L. Kistler, A. Saikin, E. Lund, and S. Ma (2019), Storm Time EMIC Waves Observed by Swarm and Van Allen Probe Satellites, J. Geophys. Res. Space Physics, 124(1), 293, doi:10.1029/2018ja026299.SYM-H
    346. Wang, J., and Y. J. Morton (2019), A Hybrid Correlation Model for the Spaced-Receiver Technique, Radio Sci., 54(3), 281, doi:10.1029/2018rs006662.Dst
    347. Wang, Z., S. Zou, S. G. Shepherd, J. Liang, J. W. Gjerloev, J. M. Ruohoniemi, B. Kunduri, and J. R. Wygant (2019), Multi-instrument Observations of Mesoscale Enhancement of Subauroral Polarization Stream Associated With an Injection, J. Geophys. Res. Space Physics, 124(3), 1770, doi:10.1029/2019ja026535.SYM-H
    348. Wang, Z., S. Zou, T. Coppeans, J. Ren, A. Ridley, and T. Gombosi (2019), Segmentation of SED by Boundary Flows Associated With Westward Drifting Partial Ring current, Geophys. Res. Lett., 46(14), 7920, doi:10.1029/2019gl084041.DstAESYM-H
    349. Watt, C. E. J., H. J. Allison, N. P. Meredith, R. L. Thompson, S. N. Bentley, I. J. Rae, S. A. Glauert, and R. B. Horne (2019), Variability of Quasilinear Diffusion Coefficients for Plasmaspheric Hiss, J. Geophys. Res. Space Physics, 124(11), 8488, doi:10.1029/2018ja026401.AE
    350. Wei, D., Y. Yu, A. J. Ridley, J. Cao, and M. W. Dunlop (2019), Multi-point observations and modeling of subauroral polarization streams (SAPS) and double-peak subauroral ion drifts (DSAIDs): A case study, Adv. Space Res., 63(11), 3522, doi:10.1016/j.asr.2019.02.004.DstAESYM-H
    351. Wei, D., Y. Yu, and F. He (2019), The Magnetospheric Driving Source of Double-Peak Subauroral Ion Drifts: Double Ring Current Pressure Peaks, Geophys. Res. Lett., 46(13), 7079, doi:10.1029/2019gl083186.Dst
    352. Wu, C.-C., K. Liou, R. P. Lepping, and L. Hutting (2019), The 04 - 10 September 2017 Sun-Earth Connection Events: Solar Flares, Coronal Mass Ejections/Magnetic Clouds, and Geomagnetic Storms, Sol. Phys., 294(8), 110, doi:10.1007/s11207-019-1446-2.Dst
    353. Xiang, Y., and Y. Gao (2019), An Enhanced Mapping Function with Ionospheric Varying Height, Remote Sens., 11(12), 1497, doi:10.3390/rs11121497.Dst
    354. Xiang, Z., X. Li, R. Selesnick, M. A. Temerin, B. Ni, H. Zhao, K. Zhang, and L. Y. Khoo (2019), Modeling the Quasi-Trapped Electron Fluxes From Cosmic Ray Albedo Neutron Decay (CRAND), Geophys. Res. Lett., 46(4), 1919, doi:10.1029/2018gl081730.Dst
    355. Xiong, C., H. Lühr, and Y. Yamazaki (2019), An Opposite Response of the Low-Latitude Ionosphere at Asian and American Sectors During Storm Recovery Phases: Drivers From Below or Above, J. Geophys. Res. Space Physics, 124(7), 6266, doi:10.1029/2019ja026917.SYM-H
    356. Xu, H., K. Shiokawa, S.-I. Oyama, and S. Nozawa (2019), High-latitude thermospheric wind study using a Fabry–Perot interferometer at Tromsø in Norway: averages and variations during quiet times, Earth Planets Space, 71(1), 110, doi:10.1186/s40623-019-1093-8.AE
    357. Xu, H., K. Shiokawa, S.-I. Oyama, and Y. Otsuka (2019), Thermospheric wind variations observed by a Fabry–Perot interferometer at Tromsø, Norway, at substorm onsets, Earth Planets Space, 71(1), 93, doi:10.1186/s40623-019-1072-0.AE
    358. Xu, J., Z. He, D. N. Baker, I. Roth, C. Wang, S. G. Kanekal, A. N. Jaynes, and X. Liu (2019), Characteristics of High-Energy Proton Responses to Geomagnetic Activities in the Inner Radiation Belt Observed by the RBSP Satellite, J. Geophys. Res. Space Physics, 124(9), 7581, doi:10.1029/2018ja026205.DstSYM-H
    359. Xu, M., C. Shen, Y. Wang, B. Luo, and Y. Chi (2019), Importance of Shock Compression in Enhancing ICME’s Geoeffectiveness, Astrophys. J. Lett., 884(2), L30, doi:10.3847/2041-8213/ab4717.Dst
    360. Xu, Y., H. S. Fu, C. Norgren, S. Toledo-Redondo, C. M. Liu, and X. C. Dong (2019), Ionospheric Cold Ions Detected by MMS Behind Dipolarization Fronts, Geophys. Res. Lett., 46(14), 7883, doi:10.1029/2019gl083885.Dst
    361. Yamamoto, K., et al. (2019), Eastward Propagating Second Harmonic Poloidal Waves Triggered by Temporary Outward Gradient of Proton Phase Space Density: Van Allen Probe A Observation, J. Geophys. Res. Space Physics, 124(12), 9904, doi:10.1029/2019ja027158.AESYM-HSYM-D
    362. Yao, J., Y. Cai, Y. Ma, and S. Zhou (2019), Evening corotating patches (ECP) observed by DMSP/SSUSI, J. Atmos. Sol.-Terr. Phys., 186, 82, doi:10.1016/j.jastp.2019.02.008.DstAE
    363. Yeeram, T. (2019), The solar wind-magnetosphere coupling and daytime disturbance electric fields in equatorial ionosphere during consecutive recurrent geomagnetic storms, J. Atmos. Sol.-Terr. Phys., 187, 40, doi:10.1016/j.jastp.2019.03.004.DstAE
    364. Yin, Z., H. Zou, Y. Ye, Q. Zong, and Y. Wang (2019), Superposed Epoch Analysis of the Energetic Electron Flux Variations During CIRs Measured by BD-IES, Space Weather, 17(12), 1765, doi:10.1029/2019sw002296.SYM-H
    365. Yu, J., L. Y. Li, J. Cui, J. B. Cao, and J. Wang (2019), Effect of Low-Harmonic Magnetosonic Waves on the Radiation Belt Electrons Inside the Plasmasphere, J. Geophys. Res. Space Physics, 124(5), 3390, doi:10.1029/2018ja026328.SYM-H
    366. Yu, Y., L. Rastätter, V. K. Jordanova, Y. Zheng, M. Engel, M.-C. Fok, and M. M. Kuznetsova (2019), Initial Results From the GEM Challenge on the Spacecraft Surface Charging Environment, Space Weather, 17(2), 299, doi:10.1029/2018sw002031.DstAE
    367. Yuan, C.-J., and Q.-G. Zong (2019), The Efficiency of Coronal Mass Ejection With Different IMF Preconditions on the Production of Megaelectronvolt Electron Content in the Outer Radiation Belt, J. Geophys. Res. Space Physics, 124(5), 3222, doi:10.1029/2018ja026263.DstSYM-H
    368. Yuan, L., S. Jin, and A. Calabia (2019), Distinct thermospheric mass density variations following the September 2017 geomagnetic storm from GRACE and Swarm, J. Atmos. Sol.-Terr. Phys., 184, 30, doi:10.1016/j.jastp.2019.01.007.SYM-H
    369. Yuan, Z., X. Yu, Z. Ouyang, F. Yao, S. Huang, and H. O. Funsten (2019), Simultaneous Trapping of Electromagnetic Ion Cyclotron and Magnetosonic Waves by Background Plasmas, J. Geophys. Res. Space Physics, 124(3), 1635, doi:10.1029/2018ja026149.AESYM-H
    370. Yue, C., et al. (2019), Oxygen Ion Dynamics in the Earth's Ring Current: Van Allen Probes Observations, J. Geophys. Res. Space Physics, 124(10), 7786, doi:10.1029/2019ja026801.SYM-H
    371. Yue, C., et al. (2019), The Relationship Between EMIC Wave Properties and Proton Distributions Based on Van Allen Probes Observations, Geophys. Res. Lett., 46(8), 4070, doi:10.1029/2019gl082633.AE
    372. Zakharenkova, I., I. Cherniak, and A. Krankowski (2019), Features of Storm-Induced Ionospheric Irregularities From Ground-Based and Spaceborne GPS Observations During the 2015 St. Patrick's Day Storm, J. Geophys. Res. Space Physics, 124(12), 10728, doi:10.1029/2019ja026782.DstAESYM-H
    373. Zawedde, A. E., H. Nesse Tyssøy, J. Stadsnes, and M. I. Sandanger (2019), Are EEP Events Important for the Tertiary Ozone Maximum?, J. Geophys. Res. Space Physics, 124(7), 5976, doi:10.1029/2018ja026201.AE
    374. Zeng, G., C. Shen, Z. J. Rong, X. Li, T. Chen, Z. Q. Chen, and Y. H. Ma (2019), Monitoring the global evolution of the storm ring current and storm indices from confined ground geomagnetic observatories, J. Atmos. Sol.-Terr. Phys., 191, 105049, doi:10.1016/j.jastp.2019.05.013.DstAESYM-HASY-H
    375. Zesta, E., and D. M. Oliveira (2019), Thermospheric Heating and Cooling Times During Geomagnetic Storms, Including Extreme Events, Geophys. Res. Lett., 46(22), 12,739, doi:10.1029/2019gl085120.DstSYM-H
    376. Zhang, K., X. Li, C. Xiong, X. Meng, X. Li, Y. Yuan, and X. Zhang (2019), The Influence of Geomagnetic Storm of 7-8 September 2017 on the Swarm Precise Orbit Determination, J. Geophys. Res. Space Physics, 124(8), 6971, doi:10.1029/2018ja026316.AESYM-H
    377. Zhang, R., L. Liu, H. Le, and Y. Chen (2019), Equatorial Ionospheric Electrodynamics Over Jicamarca During the 6-11 September 2017 Space Weather Event, J. Geophys. Res. Space Physics, 124(2), 1292, doi:10.1029/2018ja026295.AESYM-H
    378. Zhang, S.-R., A. J. Coster, P. J. Erickson, L. P. Goncharenko, W. Rideout, and J. Vierinen (2019), Traveling Ionospheric Disturbances and Ionospheric Perturbations Associated With Solar Flares in September 2017, J. Geophys. Res. Space Physics, 124(7), 5894, doi:10.1029/2019ja026585.AE
    379. Zhang, X.-J., D. Mourenas, A. V. Artemyev, V. Angelopoulos, J. Bortnik, R. M. Thorne, W. S. Kurth, C. A. Kletzing, and G. B. Hospodarsky (2019), Nonlinear Electron Interaction With Intense Chorus Waves: Statistics of Occurrence Rates, Geophys. Res. Lett., 46(13), 7182, doi:10.1029/2019gl083833.AE
    380. Zhang, X.-J., L. Chen, A. V. Artemyev, V. Angelopoulos, and X. Liu (2019), Periodic Excitation of Chorus and ECH Waves Modulated by Ultralow Frequency Compressions, J. Geophys. Res. Space Physics, 124(11), 8535, doi:10.1029/2019ja027201.AE
    381. Zhang, Y., L. J. Paxton, G. Lu, and S. Yee (2019), Impact of nitric oxide, solar EUV and particle precipitation on thermospheric density decrease, J. Atmos. Sol.-Terr. Phys., 182, 147, doi:10.1016/j.jastp.2018.11.016.Dst
    382. Zhao, B., C. Yang, Y. Cai, Y. Jin, Y. Liang, F. Ding, X. Yue, and W. Wan (2019), East-West Difference in the Ionospheric Response of the March 1989 Great Magnetic Storm Throughout East Asian Region, J. Geophys. Res. Space Physics, 124(11), 9364, doi:10.1029/2019ja027108.DstAE
    383. Zhao, H., D. N. Baker, X. Li, A. N. Jaynes, and S. G. Kanekal (2019), The Effects of Geomagnetic Storms and Solar Wind Conditions on the Ultrarelativistic Electron Flux Enhancements, J. Geophys. Res. Space Physics, 124(3), 1948, doi:10.1029/2018ja026257.DstAESYM-HASY-H
    384. Zhao, H., D. N. Baker, X. Li, D. M. Malaspina, A. N. Jaynes, and S. G. Kanekal (2019), On the Acceleration Mechanism of Ultrarelativistic Electrons in the Center of the Outer Radiation Belt: A Statistical Study, J. Geophys. Res. Space Physics, 124(11), 8590, doi:10.1029/2019ja027111.DstAE
    385. Zhao, H., et al. (2019), Characterization and Evolution of Radiation Belt Electron Energy Spectra Based on the Van Allen Probes Measurements, J. Geophys. Res. Space Physics, 124(6), 4217, doi:10.1029/2019ja026697.DstAE
    386. Zhao, S., C. Zhou, X. Shen, and Z. Zhima (2019), Investigation of VLF Transmitter Signals in the Ionosphere by ZH-1 Observations and Full-Wave Simulation, J. Geophys. Res. Space Physics, 124(6), 4697, doi:10.1029/2019ja026593.Dst
    387. Zhao, W., S. Liu, S. Zhang, Q. Zhou, C. Yang, Y. He, Z. Gao, and F. Xiao (2019), Global Occurrences of Auroral Kilometric Radiation Related to Suprathermal Electrons in Radiation Belts, Geophys. Res. Lett., 46(13), 7230, doi:10.1029/2019gl083944.Dst
    388. Zheng, Z.-Q., J. Lei, X. Yue, X.-X. Zhang, and F. He (2019), Development of a 3-D Plasmapause Model With a Back-Propagation Neural Network, Space Weather, 17(12), 1689, doi:10.1029/2019sw002360.DstAESYM-H
    389. Zhou, S., X. Luan, V. Pierrard, and D. Han (2019), Isolated Auroral Spots Observed by DMSP/SSUSI, J. Geophys. Res. Space Physics, 124(11), 8416, doi:10.1029/2019ja026853.SYM-H
    390. Zhu, H., and L. Chen (2019), On the Observation of Electrostatic Harmonics Associated With EMIC Waves, Geophys. Res. Lett., 46(24), 14,274, doi:10.1029/2019gl085528.SYM-H
    391. Zhu, H., L. Chen, X. Liu, and Y. Y. Shprits (2019), Modulation of Locally Generated Equatorial Noise by ULF Wave, J. Geophys. Res. Space Physics, 124(4), 2779, doi:10.1029/2018ja026199.Dst
    392. Zhu, H., X. Liu, and L. Chen (2019), Triggered Plasmaspheric Hiss: Rising Tone Structures, Geophys. Res. Lett., 46(10), 5034, doi:10.1029/2019gl082688.DstAE
    393. Záhlava, J., F. Němec, O. Santolík, I. Kolmašová, G. B. Hospodarsky, M. Parrot, W. S. Kurth, and C. A. Kletzing (2019), Lightning Contribution to Overall Whistler Mode Wave Intensities in the Plasmasphere, Geophys. Res. Lett., 46(15), 8607, doi:10.1029/2019gl083918.AE

    2018 370 papers↑ top

    1. Aa, E., et al. (2018), Midlatitude Plasma Bubbles Over China and Adjacent Areas During a Magnetic Storm on 8 September 2017, Space Weather, 16(3), 321, doi:10.1002/2017sw001776.SYM-HSYM-DASY-H
    2. Acero, F. J., J. M. Vaquero, M. C. Gallego, and J. A. García (2018), A Limit for the Values of the Dst Geomagnetic Index, Geophys. Res. Lett., 45(18), 9435, doi:10.1029/2018gl079676.Dst
    3. Adekoya, B. J., and V. U. Chukwuma (2018), Classification and quantification of solar wind driver gases leading to intense geomagnetic storms, Adv. Space Res., 61(1), 274, doi:10.1016/j.asr.2017.09.036.Dst
    4. Adhikari, B., S. Dahal, N. Sapkota, P. Baruwal, B. Bhattarai, K. Khanal, and N. P. Chapagain (2018), Field-Aligned Current and Polar Cap Potential and Geomagnetic Disturbances: A Review of Cross-Correlation Analysis, Earth Space Sci., 5(9), 440, doi:10.1029/2018ea000392.AESYM-HSYM-D
    5. Ahmad, N., D. Herdiwijaya, T. Djamaluddin, H. Usui, and Y. Miyake (2018), Diagnosing low earth orbit satellite anomalies using NOAA-15 electron data associated with geomagnetic perturbations, Earth Planets Space, 70(1), 91, doi:10.1186/s40623-018-0852-2.Dst
    6. Ahmed, J., M. Shah, W. A. Zafar, M. A. Amin, and T. Iqbal (2018), Seismoionospheric anomalies associated with earthquakes from the analysis of the ionosonde data, J. Atmos. Sol.-Terr. Phys., 179, 450, doi:10.1016/j.jastp.2018.10.004.DstAE
    7. Aikio, A. T., H. Vanhamäki, A. B. Workayehu, I. I. Virtanen, K. Kauristie, L. Juusola, S. Buchert, and D. Knudsen (2018), Swarm Satellite and EISCAT Radar Observations of a Plasma Flow Channel in the Auroral Oval Near Magnetic Midnight, J. Geophys. Res. Space Physics, 123(6), 5140, doi:10.1029/2018ja025409.AE
    8. Akhoondzadeh, M., A. De Santis, D. Marchetti, A. Piscini, and G. Cianchini (2018), Multi precursors analysis associated with the powerful Ecuador (MW = 7.8) earthquake of 16 April 2016 using Swarm satellites data in conjunction with other multi-platform satellite and ground data, Adv. Space Res., 61(1), 248, doi:10.1016/j.asr.2017.07.014.Dst
    9. Al-Shakarchi, D. A., and H. Morgan (2018), Properties of the HPS-ICME-CIR Interaction Event of 9-10 September 2011, J. Geophys. Res. Space Physics, 123(4), 2535, doi:10.1002/2017ja024849.Dst
    10. Alimaganbetov, M., and A. V. Streltsov (2018), ULF waves observed during substorms in the solar wind and on the ground, J. Atmos. Sol.-Terr. Phys., 181, 10, doi:10.1016/j.jastp.2018.10.007.AE
    11. Amaechi, P. O., E. O. Oyeyemi, and A. O. Akala (2018), Geomagnetic storm effects on the occurrences of ionospheric irregularities over the African equatorial/low-latitude region, Adv. Space Res., 61(8), 2074, doi:10.1016/j.asr.2018.01.035.Dst
    12. Amaechi, P. O., E. O. Oyeyemi, and A. O. Akala (2018), The Response of African Equatorial/Low-Latitude Ionosphere to 2015 St. Patrick's Day Geomagnetic Storm, Space Weather, 16(6), 601, doi:10.1029/2017sw001751.DstSYM-HSYM-D
    13. Anderson, B. J., C. N. Olson, H. Korth, R. J. Barnes, C. L. Waters, and S. K. Vines (2018), Temporal and Spatial Development of Global Birkeland Currents, J. Geophys. Res. Space Physics, 123(6), 4785, doi:10.1029/2018ja025254.AESYM-HSYM-DASY-H
    14. Annadurai, N. M. N., N. S. A. Hamid, Y. Yamazaki, and A. Yoshikawa (2018), Investigation of Unusual Solar Flare Effect on the Global Ionospheric Current System, J. Geophys. Res. Space Physics, 123(10), 8599, doi:10.1029/2018ja025601.SYM-H
    15. Antonova, E. E., et al. (2018), Structure of magnetospheric current systems and mapping of high latitude magnetospheric regions to the ionosphere, J. Atmos. Sol.-Terr. Phys., 177, 103, doi:10.1016/j.jastp.2017.10.013.SYM-H
    16. Antonova, E. E., M. V. Stepanova, P. S. Moya, V. A. Pinto, V. V. Vovchenko, I. L. Ovchinnikov, and N. V. Sotnikov (2018), Processes in auroral oval and outer electron radiation belt, Earth Planets Space, 70(1), 127, doi:10.1186/s40623-018-0898-1.DstAESYM-H
    17. Armano, M., et al. (2018), Characteristics and Energy Dependence of Recurrent Galactic Cosmic-Ray Flux Depressions and of a Forbush Decrease with LISA Pathfinder, Astrophys. J., 854(2), 113, doi:10.3847/1538-4357/aaa774.SYM-H
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    290. Shinbori, A., et al. (2018), Temporal and Spatial Variations of Storm Time Midlatitude Ionospheric Trough Based on Global GNSS-TEC and Arase Satellite Observations, Geophys. Res. Lett., 45(15), 7362, doi:10.1029/2018gl078723.SYM-H
    291. Shiokawa, K., et al. (2018), Purple Auroral Rays and Global Pc1 Pulsations Observed at the CIR-Associated Solar Wind Density Enhancement on 21 March 2017, Geophys. Res. Lett., 45(20), 10,819, doi:10.1029/2018gl079103.DstAESYM-H
    292. Shprits, Y. Y., et al. (2018), Scientific Objectives of Electron Losses and Fields INvestigation Onboard Lomonosov Satellite, Space Sci. Rev., 214(1), 25, doi:10.1007/s11214-017-0455-4.Dst
    293. Shpynev, B. G., et al. (2018), The ionosphere response to severe geomagnetic storm in March 2015 on the base of the data from Eurasian high-middle latitudes ionosonde chain, J. Atmos. Sol.-Terr. Phys., 180, 93, doi:10.1016/j.jastp.2017.10.014.DstAESYM-H
    294. Sibeck, D. G., et al. (2018), Imaging Plasma Density Structures in the Soft X-Rays Generated by Solar Wind Charge Exchange with Neutrals, Space Sci. Rev., 214(4), 79, doi:10.1007/s11214-018-0504-7.Dst
    295. Siddiqui, T. A., Y. Yamazaki, C. Stolle, H. Lühr, J. Matzka, A. Maute, and N. Pedatella (2018), Dependence of Lunar Tide of the Equatorial Electrojet on the Wintertime Polar Vortex, Solar Flux, and QBO, Geophys. Res. Lett., 45(9), 3801, doi:10.1029/2018gl077510.Dst
    296. Sieradzki, R., and J. Paziewski (2018), On the Feasibility of Interhemispheric Patch Detection Using Ground-Based GNSS Measurements, Remote Sens., 10(12), 2044, doi:10.3390/rs10122044.AESYM-H
    297. Simms, L., M. Engebretson, M. Clilverd, C. Rodger, M. Lessard, J. Gjerloev, and G. Reeves (2018), A Distributed Lag Autoregressive Model of Geostationary Relativistic Electron Fluxes: Comparing the Influences of Waves, Seed and Source Electrons, and Solar Wind Inputs, J. Geophys. Res. Space Physics, 123(5), 3646, doi:10.1029/2017ja025002.Dst
    298. Sojka, J. J., D. Rice, V. Eccles, M. David, R. W. Schunk, R. F. Benson, and H. G. James (2018), Polar Topside Ionosphere During Geomagnetic Storms: Comparison of ISIS-II With TDIM, Radio Sci., 53(7), 906, doi:10.1029/2018rs006589.Dst
    299. Sorathia, K. A., A. Y. Ukhorskiy, V. G. Merkin, J. F. Fennell, and S. G. Claudepierre (2018), Modeling the Depletion and Recovery of the Outer Radiation Belt During a Geomagnetic Storm: Combined MHD and Test Particle Simulations, J. Geophys. Res. Space Physics, 123(7), 5590, doi:10.1029/2018ja025506.Dst
    300. Spencer, E., S. K. Vadepu, P. Srinivas, S. Patra, and W. Horton (2018), The dynamics of geomagnetic substorms with the WINDMI model, Earth Planets Space, 70(1), 118, doi:10.1186/s40623-018-0882-9.DstAE
    301. Sripathi, S., M. A. Abdu, A. K. Patra, and R. N. Ghodpage (2018), Unusual Generation of Localized EPB in the Dawn Sector Triggered by a Moderate Geomagnetic Storm, J. Geophys. Res. Space Physics, 123(11), 9697, doi:10.1029/2018ja025642.DstAESYM-HSYM-D
    302. Sripathi, S., S. Banola, K. Emperumal, B. Suneel Kumar, and S. M. Radicella (2018), The Role of Storm Time Electrodynamics in Suppressing the Equatorial Plasma Bubble Development in the Recovery Phase of a Geomagnetic Storm, J. Geophys. Res. Space Physics, 123(3), 2336, doi:10.1002/2017ja024956.DstAESYM-H
    303. Srivastava, N., W. Mishra, and D. Chakrabarty (2018), Interplanetary and Geomagnetic Consequences of Interacting CMEs of 13 - 14 June 2012, Sol. Phys., 293(1), 5, doi:10.1007/s11207-017-1227-8.SYM-H
    304. Stanislawska, I., T. L. Gulyaeva, O. Grynyshyna-Poliuga, and L. V. Pustovalova (2018), Ionospheric Weather During Five Extreme Geomagnetic Superstorms Since IGY Deduced With the Instantaneous Global Maps GIM-foF2, Space Weather, 16(12), 2068, doi:10.1029/2018sw001945.DstAE
    305. Suji, K. J., and P. R. Prince (2018), Global and local Joule heating during substorms in St. Patrick's Day 2015 geomagnetic storm, Earth Planets Space, 70(1), 167, doi:10.1186/s40623-018-0940-3.DstAE
    306. Sun, W., et al. (2018), Strong Sporadic E Occurrence Detected by Ground-Based GNSS, J. Geophys. Res. Space Physics, 123(4), 3050, doi:10.1002/2017ja025133.Dst
    307. Søraas, F., M. I. Sandanger, and C. Smith-Johnsen (2018), NOAA POES and MetOp particle observations during the 17 March 2013 storm, J. Atmos. Sol.-Terr. Phys., 177, 115, doi:10.1016/j.jastp.2017.09.004.AE
    308. Tabari, H., and P. Willems (2018), Lagged influence of Atlantic and Pacific climate patterns on European extreme precipitation, Sci. Rep., 8, 5748, doi:10.1038/s41598-018-24069-9.AE
    309. Takagi, Y., K. Shiokawa, Y. Otsuka, M. Connors, and I. Schofield (2018), Statistical Analysis of SAR Arc Detachment From the Main Oval Based on 11-Year, All-Sky Imaging Observation at Athabasca, Canada, Geophys. Res. Lett., 45(21), 11,539, doi:10.1029/2018gl079615.AESYM-H
    310. Takahashi, K., et al. (2018), Impulsively Excited Nightside Ultralow Frequency Waves Simultaneously Observed on and off the Magnetic Equator, Geophys. Res. Lett., 45(16), 7918, doi:10.1029/2018gl078731.AE
    311. Takahashi, K., M. D. Hartinger, M. Vellante, B. Heilig, R. L. Lysak, D.-H. Lee, and C. W. Smith (2018), Roles of Flow Braking, Plasmaspheric Virtual Resonances, and Ionospheric Currents in Producing Ground Pi2 Pulsations, J. Geophys. Res. Space Physics, 123(11), 9187, doi:10.1029/2018ja025664.AE
    312. Takahashi, N., et al. (2018), Global Distribution of ULF Waves During Magnetic Storms: Comparison of Arase, Ground Observations, and BATSRUS + CRCM Simulation, Geophys. Res. Lett., 45(18), 9390, doi:10.1029/2018gl078857.DstAESYM-H
    313. Tang, C. L., et al. (2018), Rapid Enhancements of the Seed Populations in the Heart of the Earth's Outer Radiation Belt: A Multicase Study, J. Geophys. Res. Space Physics, 123(6), 4895, doi:10.1029/2017ja025142.AE
    314. Teng, S., J. Zhao, X. Tao, S. Wang, and G. D. Reeves (2018), Observation of Oblique Lower Band Chorus Generated by Nonlinear Three-Wave Interaction, Geophys. Res. Lett., 45(13), 6343, doi:10.1029/2018gl078765.AE
    315. Tindale, E., S. C. Chapman, N. R. Moloney, and N. W. Watkins (2018), The Dependence of Solar Wind Burst Size on Burst Duration and Its Invariance Across Solar Cycles 23 and 24, J. Geophys. Res. Space Physics, 123(9), 7196, doi:10.1029/2018ja025740.SYM-H
    316. Troshichev, O. A., and D. A. Sormakov (2018), PC index as a proxy of the solar wind energy that entered into the magnetosphere: 3. Development of magnetic storms, J. Atmos. Sol.-Terr. Phys., 180, 60, doi:10.1016/j.jastp.2017.10.012.DstAE
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    318. Tshisaphungo, M., J. B. Habarulema, and L.-A. McKinnell (2018), Modeling ionospheric foF 2 response during geomagnetic storms using neural network and linear regression techniques, Adv. Space Res., 61(12), 2891, doi:10.1016/j.asr.2018.03.025.DstAESYM-H
    319. Tsuchiya, F., et al. (2018), Energetic Electron Precipitation Associated With Pulsating Aurora Observed by VLF Radio Propagation During the Recovery Phase of a Substorm on 27 March 2017, Geophys. Res. Lett., 45(23), 12,651, doi:10.1029/2018gl080222.AESYM-H
    320. Tsurutani, B. T., et al. (2018), Plasmaspheric Hiss: Coherent and Intense, J. Geophys. Res. Space Physics, 123(12), 10,009, doi:10.1029/2018ja025975.AESYM-H
    321. Tsurutani, B. T., G. S. Lakhina, A. Sen, P. Hellinger, K.-H. Glassmeier, and A. J. Mannucci (2018), A Review of Alfvénic Turbulence in High-Speed Solar Wind Streams: Hints From Cometary Plasma Turbulence, J. Geophys. Res. Space Physics, 123(4), 2458, doi:10.1002/2017ja024203.DstAE
    322. Török, T., C. Downs, J. A. Linker, R. Lionello, V. S. Titov, Z. Mikić, P. Riley, R. M. Caplan, and J. Wijaya (2018), Sun-to-Earth MHD Simulation of the 2000 July 14 “Bastille Day” Eruption, Astrophys. J., 856(1), 75, doi:10.3847/1538-4357/aab36d.Dst
    323. Uryadov, V. P., F. I. Vybornov, A. A. Kolchev, G. G. Vertogradov, M. S. Sklyarevsky, I. A. Egoshin, V. V. Shumaev, and A. G. Chernov (2018), Impact of heliogeophysical disturbances on ionospheric HF channels, Adv. Space Res., 61(7), 1837, doi:10.1016/j.asr.2017.07.003.DstAE
    324. Usanova, M. E., et al. (2018), MMS Observations of Harmonic Electromagnetic Ion Cyclotron Waves, Geophys. Res. Lett., 45(17), 8764, doi:10.1029/2018gl079006.AE
    325. Uwamahoro, J. C., J. B. Habarulema, and P. M. Okouma (2018), Storm Time Total Electron Content Modeling Over African Low-Latitude and Midlatitude Regions, J. Geophys. Res. Space Physics, 123(9), 7889, doi:10.1029/2018ja025455.Dst
    326. Uwamahoro, J. C., N. M. Giday, J. B. Habarulema, Z. T. Katamzi-Joseph, and G. K. Seemala (2018), Reconstruction of Storm-Time Total Electron Content Using Ionospheric Tomography and Artificial Neural Networks: A Comparative Study Over the African Region, Radio Sci., 53(11), 1328, doi:10.1029/2017rs006499.DstAE
    327. Valek, P. W., E. Delmonico, D. J. McComas, J. Goldstein, F. Allegrini, and S. Livi (2018), Composition of 1-128 keV Magnetospheric ENAs, J. Geophys. Res. Space Physics, 123(4), 2668, doi:10.1002/2017ja024997.DstAE
    328. Varotsos, C. A., and M. N. Efstathiou (2018), Τhe observational and empirical thermospheric CO2 and NO power do not exhibit power-law behavior; an indication of their reliability, J. Atmos. Sol.-Terr. Phys., 168, 1, doi:10.1016/j.jastp.2018.01.006.Dst
    329. Verbanac, G., M. Bandić, V. Pierrard, and J. Cho (2018), MLT Plasmapause Characteristics: Comparison Between THEMIS Observations and Numerical Simulations, J. Geophys. Res. Space Physics, 123(3), 2000, doi:10.1002/2017ja024573.AE
    330. Verhulst, T. G. W., and S. M. Stankov (2018), Ionospheric wave signature of the American solar eclipse on 21 August 2017 in Europe, Adv. Space Res., 61(9), 2245, doi:10.1016/j.asr.2018.02.007.Dst
    331. Verkhoglyadova, O. P., X. Meng, A. J. Mannucci, and R. M. McGranaghan (2018), Semianalytical Estimation of Energy Deposition in the Ionosphere by Monochromatic Alfvén Waves, J. Geophys. Res. Space Physics, 123(6), 5210, doi:10.1029/2017ja025097.AE
    332. Vorobjev, V. G., E. E. Antonova, and O. I. Yagodkina (2018), How the intensity of isolated substorms is controlled by the solar wind parameters, Earth Planets Space, 70(1), 148, doi:10.1186/s40623-018-0922-5.AESYM-HSYM-D
    333. Vovchenko, V. V., E. E. Antonova, and M. Stepanova (2018), Magnetic holes observed in the ring current region near the equatorial plane, J. Atmos. Sol.-Terr. Phys., 177, 141, doi:10.1016/j.jastp.2017.08.024.AESYM-H
    334. Waldrop, L., R. B. Kerr, and Y. Huang (2018), Evidence for Radiative Recombination of O+ Ions as a Significant Source of O 844.6 nm Emission Excitation, J. Geophys. Res. Space Physics, 123(4), 3078, doi:10.1002/2017ja024790.Dst
    335. Wang, C.-P., X. Xing, Y.-H. Liu, and A. Runov (2018), A Case Study of Connection Between Ground Magnetic Field Perturbations and Tail Current Sheet Bursty Flows at X = −60 RE, J. Geophys. Res. Space Physics, 123(3), 1822, doi:10.1002/2017ja024972.AESYM-HSYM-D
    336. Wang, J., Y. J. Morton, and D. Hampton (2018), New Results on Ionospheric Irregularity Drift Velocity Estimation Using Multi-GNSS Spaced-Receiver Array During High-Latitude Phase Scintillation, Radio Sci., 53(2), 228, doi:10.1002/2017rs006470.DstSYM-H
    337. Wang, N., S. Datta-Barua, A. T. Chartier, U. Ramirez, and C. N. Mitchell (2018), Horseshoes in the High-Latitude Ionosphere, J. Geophys. Res. Space Physics, 123(7), 5831, doi:10.1029/2017ja025077.AE
    338. Watari, S. (2018), Intense Geomagnetic Storms Associated with Coronal Holes Under the Weak Solar-Wind Conditions of Cycle 24, Sol. Phys., 293(2), 23, doi:10.1007/s11207-018-1248-y.DstSYM-H
    339. Wei, L., Q. Zhong, R. Lin, J. Wang, S. Liu, and Y. Cao (2018), Quantitative Prediction of High-Energy Electron Integral Flux at Geostationary Orbit Based on Deep Learning, Space Weather, 16(7), 903, doi:10.1029/2018sw001829.Dst
    340. Wharton, S. J., D. M. Wright, T. K. Yeoman, M. K. James, and J. K. Sandhu (2018), Cross-Phase Determination of Ultralow Frequency Wave Harmonic Frequencies and Their Associated Plasma Mass Density Distributions, J. Geophys. Res. Space Physics, 123(8), 6231, doi:10.1029/2018ja025487.Dst
    341. Wintoft, P., and M. Wik (2018), Evaluation of Kp and Dst Predictions Using ACE and DSCOVR Solar Wind Data, Space Weather, 16(12), 1972, doi:10.1029/2018sw001994.Dst
    342. Xiang, Z., W. Tu, B. Ni, M. G. Henderson, and X. Cao (2018), A Statistical Survey of Radiation Belt Dropouts Observed by Van Allen Probes, Geophys. Res. Lett., 45(16), 8035, doi:10.1029/2018gl078907.Dst
    343. Xiao, C., W. Liu, C. Shen, H. Zhang, and Z. Rong (2018), Study on the Curvature and Gradient of the Magnetic Field in Earth's Cusp Region Based on the Magnetic Curvature Analysis Method, J. Geophys. Res. Space Physics, 123(5), 3794, doi:10.1029/2017ja025028.Dst
    344. Xing, Z., Q. Zhang, D. Han, Y. Zhang, N. Sato, S. Zhang, Z. Hu, Y. Wang, and Y. Ma (2018), Conjugate Observations of the Evolution of Polar Cap Arcs in Both Hemispheres, J. Geophys. Res. Space Physics, 123(3), 1794, doi:10.1002/2017ja024272.AE
    345. Xiong, Y., L. Xie, L. Chen, B. Ni, S. Fu, and Z. Pu (2018), The Response of the Energy Content of the Outer Electron Radiation Belt to Geomagnetic Storms, J. Geophys. Res. Space Physics, 123(10), 8227, doi:10.1029/2018ja025475.DstAE
    346. Xu, X., Q. Chang, Q. Xu, V. Angelopoulos, Y. Wang, and P. Zuo (2018), The Energetic Particle Environment of the Lunar Nearside: Influence of the Energetic Ions from Earth’s Bow Shock, Astrophys. J., 863(1), 80, doi:10.3847/1538-4357/aad282.DstAESYM-H
    347. Yamamoto, K., et al. (2018), Giant Pulsations Excited by a Steep Earthward Gradient of Proton Phase Space Density: Arase Observation, Geophys. Res. Lett., 45(14), 6773, doi:10.1029/2018gl078293.AE
    348. Yamauchi, M., T. Sergienko, C.-F. Enell, A. Schillings, R. Slapak, M. G. Johnsen, A. Tjulin, and H. Nilsson (2018), Ionospheric Response Observed by EISCAT During the 6-8 September 2017 Space Weather Event: Overview, Space Weather, 16(9), 1437, doi:10.1029/2018sw001937.AESYM-H
    349. Yang, G., C. Jiang, T. Lan, W. Huang, and Z. Zhao (2018), Ionosonde observations of daytime spread F at middle latitudes during a geomagnetic storm, J. Atmos. Sol.-Terr. Phys., 179, 174, doi:10.1016/j.jastp.2018.07.009.Dst
    350. Yang, H., E. Monte Moreno, and M. Hernández-Pajares (2018), Detection and Description of the Different Ionospheric Disturbances that Appeared during the Solar Eclipse of 21 August 2017, Remote Sens., 10(11), 1710, doi:10.3390/rs10111710.AE
    351. Yasyukevich, A. S. (2018), Variations in Ionospheric Peak Electron Density During Sudden Stratospheric Warmings in the Arctic Region, J. Geophys. Res. Space Physics, 123(4), 3027, doi:10.1002/2017ja024739.AE
    352. Yasyukevich, Y., E. Astafyeva, A. Padokhin, V. Ivanova, S. Syrovatskii, and A. Podlesnyi (2018), The 6 September 2017 X-Class Solar Flares and Their Impacts on the Ionosphere, GNSS, and HF Radio Wave Propagation, Space Weather, 16(8), 1013, doi:10.1029/2018sw001932.SYM-H
    353. Yermolaev, Y. I., I. G. Lodkina, N. S. Nikolaeva, M. Y. Yermolaev, M. O. Riazantseva, and L. S. Rakhmanova (2018), Statistic study of the geoeffectiveness of compression regions CIRs and Sheaths, J. Atmos. Sol.-Terr. Phys., 180, 52, doi:10.1016/j.jastp.2018.01.027.DstAE
    354. Yi, W., et al. (2018), High- and Middle-Latitude Neutral Mesospheric Density Response to Geomagnetic Storms, Geophys. Res. Lett., 45(1), 436, doi:10.1002/2017gl076282.DstAE
    355. Yu, J., L. Y. Li, J. Cui, and J. Wang (2018), Ultrawideband Rising-Tone Chorus Waves Observed Inside the Oscillating Plasmapause, J. Geophys. Res. Space Physics, 123(8), 6670, doi:10.1029/2018ja025875.SYM-H
    356. Yu, X., Z. Yuan, H. Li, S. Huang, D. Wang, F. Yao, H. O. Funsten, and J. R. Wygant (2018), Response of Banded Whistler Mode Waves to the Enhancement of Solar Wind Dynamic Pressure in the Inner Earth's Magnetosphere, Geophys. Res. Lett., 45(17), 8755, doi:10.1029/2018gl078849.SYM-HSYM-D
    357. Yu, Y., V. K. Jordanova, R. M. McGranaghan, and S. C. Solomon (2018), Self-Consistent Modeling of Electron Precipitation and Responses in the Ionosphere: Application to Low-Altitude Energization During Substorms, Geophys. Res. Lett., 45(13), 6371, doi:10.1029/2018gl078828.AE
    358. Yue, C., et al. (2018), The Composition of Plasma inside Geostationary Orbit Based on Van Allen Probes Observations, J. Geophys. Res. Space Physics, 123(8), 6478, doi:10.1029/2018ja025344.AE
    359. Zakharenkova, I., and I. Cherniak (2018), Underutilized Spaceborne GPS Observations for Space Weather Monitoring, Space Weather, 16(4), 345, doi:10.1002/2017sw001756.AESYM-HSYM-D
    360. Zhang, D., W. Liu, X. Li, T. Sarris, C. Xiao, and J. R. Wygant (2018), Observations of Impulsive Electric Fields Induced by Interplanetary Shock, Geophys. Res. Lett., 45(15), 7287, doi:10.1029/2018gl078809.SYM-HSYM-D
    361. Zhang, R., L. Liu, N. Balan, H. Le, Y. Chen, and B. Zhao (2018), Equatorial Ionospheric Disturbance Field-Aligned Plasma Drifts Observed by C/NOFS, J. Geophys. Res. Space Physics, 123(5), 4192, doi:10.1029/2018ja025273.SYM-H
    362. Zhang, W., et al. (2018), Electron Scattering by Plasmaspheric Hiss in a Nightside Plume, Geophys. Res. Lett., 45(10), 4618, doi:10.1029/2018gl077212.DstAE
    363. Zhang, X.-J., D. Mourenas, A. V. Artemyev, V. Angelopoulos, and R. M. Thorne (2018), Electron Flux Enhancements at L = 4.2 Observed by Global Positioning System Satellites: Relationship With Solar Wind and Geomagnetic Activity, J. Geophys. Res. Space Physics, 123(8), 6189, doi:10.1029/2018ja025497.DstAE
    364. Zhang, Y., B. Ni, Z. Xiang, X. Zhang, X. Zhang, X. Gu, S. Fu, X. Cao, and Z. Zou (2018), Inter-satellite calibration of FengYun 3 medium energy electron fluxes with POES electron measurements, Adv. Space Res., 61(9), 2290, doi:10.1016/j.asr.2018.02.017.DstAE
    365. Zhang, Z., F. Guo, and X. Zhang (2018), The Effects of Higher-Order Ionospheric Terms on GPS Tropospheric Delay and Gradient Estimates, Remote Sens., 10(10), 1561, doi:10.3390/rs10101561.Dst
    366. Zhao, H., D. N. Baker, X. Li, A. N. Jaynes, and S. G. Kanekal (2018), The Acceleration of Ultrarelativistic Electrons During a Small to Moderate Storm of 21 April 2017, Geophys. Res. Lett., 45(12), 5818, doi:10.1029/2018gl078582.DstAE
    367. Zhao, H., et al. (2018), An Empirical Model of Radiation Belt Electron Pitch Angle Distributions Based On Van Allen Probes Measurements, J. Geophys. Res. Space Physics, 123(5), 3493, doi:10.1029/2018ja025277.Dst
    368. Zheng, Z., H. Wang, L. Yu, Y. He, and K. Li (2018), Temporal and spatial variations of the equatorial electrojet during storm times from CHAMP observations, J. Atmos. Sol.-Terr. Phys., 179, 307, doi:10.1016/j.jastp.2018.07.012.Dst
    369. Zhu, H., Y. Y. Shprits, L. Chen, X. Liu, and A. C. Kellerman (2018), An Event on Simultaneous Amplification of Exohiss and Chorus Waves Associated With Electron Density Enhancements, J. Geophys. Res. Space Physics, 123(11), 8958, doi:10.1029/2017ja025023.DstAE
    370. Záhlava, J., F. Němec, O. Santolík, I. Kolmašova, G. B. Hospodarsky, M. Parrot, W. S. Kurth, J. Bortnik, and C. Kletzing (2018), Longitudinal Dependence of Whistler Mode Electromagnetic Waves in the Earth's Inner Magnetosphere, J. Geophys. Res. Space Physics, 123(8), 6562, doi:10.1029/2018ja025284.AE

    2017 348 papers↑ top

    1. Abdu, M. A., P. A. B. Nogueira, J. R. Souza, I. S. Batista, S. L. G. Dutra, and J. H. A. Sobral (2017), Equatorial electrojet responses to intense solar flares under geomagnetic disturbance time electric fields, J. Geophys. Res. Space Physics, 122(3), 3570, doi:10.1002/2016ja023667.AESYM-H
    2. Adhikari, B., N. Sapkota, P. Baruwal, N. P. Chapagain, and C. R. Braga (2017), Impacts on Cosmic-Ray Intensity Observed During Geomagnetic Disturbances, Sol. Phys., 292(10), 149, doi:10.1007/s11207-017-1183-3.AESYM-H
    3. Adhikari, B., P. Baruwal, and N. P. Chapagain (2017), Analysis of supersubstorm events with reference to polar cap potential and polar cap index, Earth Space Sci., 4(1), 2, doi:10.1002/2016ea000217.AESYM-H
    4. Adhikari, B., S. Dahal, and N. P. Chapagain (2017), Study of field-aligned current (FAC), interplanetary electric field component (Ey), interplanetary magnetic field component (Bz), and northward (x) and eastward (y) components of geomagnetic field during supersubstorm, Earth Space Sci., 4(5), 257, doi:10.1002/2017ea000258.AESYM-H
    5. Agapitov, O., L. W. Blum, F. S. Mozer, J. W. Bonnell, and J. Wygant (2017), Chorus whistler wave source scales as determined from multipoint Van Allen Probe measurements, Geophys. Res. Lett., 44(6), 2634, doi:10.1002/2017gl072701.Dst
    6. Aggarwal, M., A. Bardhan, and D. K. Sharma (2017), Equinoctial asymmetry in ionosphere over Indian region during 2006-2013 using COSMIC measurements, Adv. Space Res., 60(5), 999, doi:10.1016/j.asr.2017.05.020.Dst
    7. Akasofu, S.-I. (2017), Auroral Substorms: Search for Processes Causing the Expansion Phase in Terms of the Electric Current Approach, Space Sci. Rev., 212(1-2), 341, doi:10.1007/s11214-017-0363-7.DstAE
    8. Akasofu, S.-I. (2017), The electric current approach in the solar–terrestrial relationship, Ann. Geophys., 35(4), 965, doi:10.5194/angeo-35-965-2017.DstAE
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    286. Turner, D. L., et al. (2017), Examining Coherency Scales, Substructure, and Propagation of Whistler Mode Chorus Elements With Magnetospheric Multiscale (MMS), J. Geophys. Res. Space Physics, 122(11), 11,201, doi:10.1002/2017ja024474.AE
    287. Turner, D. L., et al. (2017), Investigating the source of near-relativistic and relativistic electrons in Earth's inner radiation belt, J. Geophys. Res. Space Physics, 122(1), 695, doi:10.1002/2016ja023600.AESYM-H
    288. Turner, D. L., et al. (2017), Multipoint Observations of Energetic Particle Injections and Substorm Activity During a Conjunction Between Magnetospheric Multiscale (MMS) and Van Allen Probes, J. Geophys. Res. Space Physics, 122(11), 11,481, doi:10.1002/2017ja024554.DstAESYM-H
    289. Twinomugisha, F., N. Ssebiyonga, and F. M. D'ujanga (2017), TEC derived from some GPS stations in East African equatorial region and comparison with the TEC from NeQuick2 model, Adv. Space Res., 60(9), 1905, doi:10.1016/j.asr.2017.07.018.Dst
    290. Valladares, C. E., J. V. Eccles, S. Basu, R. W. Schunk, R. Sheehan, R. Pradipta, and J. M. Ruohoniemi (2017), The magnetic storms of 3-4 August 2010 and 5-6 August 2011: 1. Ground- and space-based observations, J. Geophys. Res. Space Physics, 122(3), 3487, doi:10.1002/2016ja023359.SYM-H
    291. Varsani, A., et al. (2017), Simultaneous Remote Observations of Intense Reconnection Effects by DMSP and MMS Spacecraft During a Storm Time Substorm, J. Geophys. Res. Space Physics, 122(11), 10,891, doi:10.1002/2017ja024547.Dst
    292. Venkata Ratnam, D., G. Sivavaraprasad, and N. S. M. P. Latha Devi (2017), Analysis of ionosphere variability over low-latitude GNSS stations during 24th solar maximum period, Adv. Space Res., 60(2), 419, doi:10.1016/j.asr.2016.08.041.Dst
    293. Venkatesh, K., S. Tulasi Ram, P. R. Fagundes, G. K. Seemala, and I. S. Batista (2017), Electrodynamic disturbances in the Brazilian equatorial and low-latitude ionosphere on St. Patrick's Day storm of 17 March 2015, J. Geophys. Res. Space Physics, 122(4), 4553, doi:10.1002/2017ja024009.DstSYM-H
    294. Verkhoglyadova, O. P., A. Komjathy, A. J. Mannucci, M. G. Mlynczak, L. A. Hunt, and L. J. Paxton (2017), Revisiting Ionosphere-Thermosphere Responses to Solar Wind Driving in Superstorms of November 2003 and 2004, J. Geophys. Res. Space Physics, 122(10), 10,824, doi:10.1002/2017ja024542.DstAESYM-H
    295. Verkhoglyadova, O. P., X. Meng, A. J. Mannucci, M. G. Mlynczak, L. A. Hunt, and G. Lu (2017), Ionosphere-thermosphere energy budgets for the ICME storms of March 2013 and 2015 estimated with GITM and observational proxies, Space Weather, 15(9), 1102, doi:10.1002/2017sw001650.DstAESYM-H
    296. Vieira, F., P. R. Fagundes, K. Venkatesh, L. P. Goncharenko, and V. G. Pillat (2017), Total electron content disturbances during minor sudden stratospheric warming, over the Brazilian region: A case study during January 2012, J. Geophys. Res. Space Physics, 122(2), 2119, doi:10.1002/2016ja023650.Dst
    297. Vršnak, B., M. Dumbović, J. Čalogović, G. Verbanac, and I. Poljančić Beljan (2017), Geomagnetic Effects of Corotating Interaction Regions, Sol. Phys., 292(9), 140, doi:10.1007/s11207-017-1165-5.DstAE
    298. Vuković, J., and T. Kos (2017), Locally adapted NeQuick 2 model performance in European middle latitude ionosphere under different solar, geomagnetic and seasonal conditions, Adv. Space Res., 60(8), 1739, doi:10.1016/j.asr.2017.05.007.Dst
    299. Wang, G. Q., M. Volwerk, T. L. Zhang, D. Schmid, and A. Yoshikawa (2017), High-latitude Pi2 pulsations associated with kink-like neutral sheet oscillations, J. Geophys. Res. Space Physics, 122(3), 2889, doi:10.1002/2016ja023370.AE
    300. Wang, J., and Y. T. Morton (2017), A comparative study of ionospheric irregularity drift velocity derived from a GNSS receiver array and Poker Flat Incoherent Scatter Radar measurements during high-latitude ionospheric scintillation, J. Geophys. Res. Space Physics, 122(6), 6858, doi:10.1002/2017ja024015.DstAESYM-H
    301. Watanabe, T., T. Iyemori, K. Shiokawa, J. Zhang, S. G. Kanekal, and N. Nishitani (2017), Special Issue "Global data systems for the study of solar-terrestrial variability", Earth Planets Space, 69(1), 155, doi:10.1186/s40623-017-0742-z.Dst
    302. Watari, S. (2017), Geomagnetic storms of cycle 24 and their solar sources, Earth Planets Space, 69(1), 70, doi:10.1186/s40623-017-0653-z.Dst
    303. Watt, C. E. J., I. J. Rae, K. R. Murphy, C. Anekallu, S. N. Bentley, and C. Forsyth (2017), The parameterization of wave-particle interactions in the Outer Radiation Belt, J. Geophys. Res. Space Physics, 122(9), 9545, doi:10.1002/2017ja024339.AE
    304. Webb, D., and N. Nitta (2017), Understanding Problem Forecasts of ISEST Campaign Flare-CME Events, Sol. Phys., 292(10), 142, doi:10.1007/s11207-017-1166-4.Dst
    305. Wiltberger, M., E. J. Rigler, V. Merkin, and J. G. Lyon (2017), Structure of High Latitude Currents in Magnetosphere-Ionosphere Models, Space Sci. Rev., 206(1-4), 575, doi:10.1007/s11214-016-0271-2.SYM-H
    306. Wu, C.-C., K. Liou, R. P. Lepping, A. Vourlidas, S. Plunkett, D. Socker, and S. T. Wu (2017), Observation of an Extremely Large-Density Heliospheric Plasma Sheet Compressed by an Interplanetary Shock at 1 AU, Sol. Phys., 292(8), 109, doi:10.1007/s11207-017-1114-3.DstSYM-H
    307. Wu, C.-C., R. P. Lepping, D. B. Berdichevsky, and K. Liou (2017), A comparison between the geoeffectiveness of north-south and south-north magnetic clouds and an associated prediction, Space Weather, 15(3), 517, doi:10.1002/2016sw001520.Dst
    308. Wu, J., et al. (2017), A comparison of small-scale magnetic fluctuations in the Region 1 and 2 field-aligned current systems, J. Geophys. Res. Space Physics, 122(3), 3277, doi:10.1002/2016ja023453.AE
    309. Xiang, Z., W. Tu, X. Li, B. Ni, S. K. Morley, and D. N. Baker (2017), Understanding the Mechanisms of Radiation Belt Dropouts Observed by Van Allen Probes, J. Geophys. Res. Space Physics, 122(10), 9858, doi:10.1002/2017ja024487.Dst
    310. Xiao, F., et al. (2017), Generation of extremely low frequency chorus in Van Allen radiation belts, J. Geophys. Res. Space Physics, 122(3), 3201, doi:10.1002/2016ja023561.AE
    311. Xiao, S., T. Zhang, G. Wang, M. Volwerk, Y. Ge, D. Schmid, R. Nakamura, W. Baumjohann, and F. Plaschke (2017), Occurrence rate of dipolarization fronts in the plasma sheet: Cluster observations, Ann. Geophys., 35(4), 1015, doi:10.5194/angeo-35-1015-2017.AE
    312. Xu, T., J. Feng, J. Wu, S. C. Ge, and Y. L. Hu (2017), Gradual reduction in ionospheric F2 region before the 2013 Lushan earthquake: Contributed to the forthcoming earthquake or solar activity?, J. Geophys. Res. Space Physics, 122(3), 3500, doi:10.1002/2016ja023699.Dst
    313. Xu, Z., M. D. Hartinger, C. R. Clauer, T. Peek, and R. Behlke (2017), A comparison of the ground magnetic responses during the 2013 and 2015 St. Patrick's Day geomagnetic storms, J. Geophys. Res. Space Physics, 122(4), 4023, doi:10.1002/2016ja023338.DstAESYM-H
    314. Yagova, N. V., B. Heilig, V. A. Pilipenko, A. Yoshikawa, N. S. Nosikova, K. Yumoto, and J. Reda (2017), Nighttime Pc3 pulsations: MM100 and MAGDAS observations, Earth Planets Space, 69(1), 61, doi:10.1186/s40623-017-0647-x.AE
    315. Yagova, N., N. Nosikova, L. Baddeley, O. Kozyreva, D. A. Lorentzen, V. Pilipenko, and M. G. Johnsen (2017), Non-triggered auroral substorms and long-period (1–4 mHz) geomagnetic and auroral luminosity pulsations in the polar cap, Ann. Geophys., 35(3), 365, doi:10.5194/angeo-35-365-2017.DstAE
    316. Yang, B., E. Donovan, J. Liang, and E. Spanswick (2017), A statistical study of the motion of pulsating aurora patches: using the THEMIS All-Sky Imager, Ann. Geophys., 35(2), 217, doi:10.5194/angeo-35-217-2017.AE
    317. Yang, X., B. Ni, J. Yu, Y. Zhang, X. Zhang, and Y. Sun (2017), Unusual refilling of the slot region between the Van Allen radiation belts from November 2004 to January 2005, J. Geophys. Res. Space Physics, 122(6), 6255, doi:10.1002/2016ja023204.Dst
    318. Yang, Y. Y., C. Shen, Z. J. Rong, M. Dunlop, X. H. Shen, J. P. Huang, and Z. Q. Chen (2017), The evolution of geomagnetotail magnetic flux in isolated substorms, J. Atmos. Sol.-Terr. Phys., 164, 163, doi:10.1016/j.jastp.2017.08.016.AE
    319. Yee, J. H., J. Gjerloev, D. Wu, and M. J. Schwartz (2017), First Application of the Zeeman Technique to Remotely Measure Auroral Electrojet Intensity From Space, Geophys. Res. Lett., 44(20), 10,134, doi:10.1002/2017gl074909.AE
    320. Yeeram, T. (2017), Interplanetary drivers of daytime penetration electric field into equatorial ionosphere during CIR-induced geomagnetic storms, J. Atmos. Sol.-Terr. Phys., 157, 6, doi:10.1016/j.jastp.2017.02.008.Dst
    321. Yi, W., I. M. Reid, X. Xue, J. P. Younger, D. J. Murphy, T. Chen, and X. Dou (2017), Response of neutral mesospheric density to geomagnetic forcing, Geophys. Res. Lett., 44(16), 8647, doi:10.1002/2017gl074813.AE
    322. Yonezu, Y., K. Shiokawa, M. Connors, M. Ozaki, J. Manninen, H. Yamagishi, and M. Okada (2017), Simultaneous observations of magnetospheric ELF/VLF emissions in Canada, Finland, and Antarctica, J. Geophys. Res. Space Physics, 122(6), 6442, doi:10.1002/2017ja024211.Dst
    323. Yu, J., L. Y. Li, J. B. Cao, L. Chen, J. Wang, and J. Yang (2017), Propagation characteristics of plasmaspheric hiss: Van Allen Probe observations and global empirical models, J. Geophys. Res. Space Physics, 122(4), 4156, doi:10.1002/2016ja023372.AE
    324. Yu, X., X. Yue, W. Zhen, J. Xu, D. Liu, and S. Guo (2017), On the occurrence of F region irregularities over Haikou retrieved from COSMIC GPS radio occultation and ground-based ionospheric scintillation monitor observations, Radio Sci., 52(1), 34, doi:10.1002/2016rs006014.Dst
    325. Yu, X., Z. Yuan, S. Huang, D. Wang, H. Li, Z. Qiao, and F. Yao (2017), EMIC waves covering wide L shells: MMS and Van Allen Probes observations, J. Geophys. Res. Space Physics, 122(7), 7387, doi:10.1002/2017ja023982.AESYM-HSYM-D
    326. Yue, C., et al. (2017), The Characteristic Pitch Angle Distributions of 1 eV to 600 keV Protons Near the Equator Based On Van Allen Probes Observations, J. Geophys. Res. Space Physics, 122(9), 9464, doi:10.1002/2017ja024421.AESYM-H
    327. Yue, C., et al. (2017), The Characteristic Response of Whistler Mode Waves to Interplanetary Shocks, J. Geophys. Res. Space Physics, 122(10), 10,047, doi:10.1002/2017ja024574.AE
    328. Zakharov, V. I., and G. I. Gorchakov (2017), GPS observation of traveling ionospheric disturbances related to Moscow megacity, Adv. Space Res., 59(2), 614, doi:10.1016/j.asr.2016.11.001.Dst
    329. Zaourar, N., C. Amory-Mazaudier, and R. Fleury (2017), Hemispheric asymmetries in the ionosphere response observed during the high-speed solar wind streams of the 24-28 August 2010, Adv. Space Res., 59(9), 2229, doi:10.1016/j.asr.2017.01.048.DstAE
    330. Zhang, K., X. Li, Q. Schiller, D. Gerhardt, H. Zhao, and R. Millan (2017), Detailed characteristics of radiation belt electrons revealed by CSSWE/REPTile measurements: Geomagnetic activity response and precipitation observation, J. Geophys. Res. Space Physics, 122(8), 8434, doi:10.1002/2017ja024309.Dst
    331. Zhang, R., L. Liu, H. Le, and Y. Chen (2017), Equatorial ionospheric electrodynamics during solar flares, Geophys. Res. Lett., 44(10), 4558, doi:10.1002/2017gl073238.AEASY-H
    332. Zhang, R., L. Liu, H. Le, Y. Chen, and J. Kuai (2017), The Storm Time Evolution of the Ionospheric Disturbance Plasma Drifts, J. Geophys. Res. Space Physics, 122(11), 11,665, doi:10.1002/2017ja024637.AESYM-HSYM-D
    333. Zhang, S.-R., et al. (2017), Observations of ion-neutral coupling associated with strong electrodynamic disturbances during the 2015 St. Patrick's Day storm, J. Geophys. Res. Space Physics, 122(1), 1314, doi:10.1002/2016ja023307.Dst
    334. Zhang, S.-R., Y. Zhang, W. Wang, and O. P. Verkhoglyadova (2017), Geospace system responses to the St. Patrick's Day storms in 2013 and 2015, J. Geophys. Res. Space Physics, 122(6), 6901, doi:10.1002/2017ja024232.DstAE
    335. Zhang, X., L. Liu, and S. Liu (2017), Dependence of thermospheric zonal winds on solar flux, geomagnetic activity, and hemisphere as measured by CHAMP, J. Geophys. Res. Space Physics, 122(8), 8893, doi:10.1002/2016ja023715.DstAE
    336. Zhang, X.-J., D. Mourenas, A. V. Artemyev, V. Angelopoulos, and R. M. Thorne (2017), Contemporaneous EMIC and whistler mode waves: Observations and consequences for MeV electron loss, Geophys. Res. Lett., 44(16), 8113, doi:10.1002/2017gl073886.AE
    337. Zhang, X.-X., F. He, R.-L. Lin, M.-C. Fok, R. M. Katus, M. W. Liemohn, D. L. Gallagher, and S. Nakano (2017), A new solar wind-driven global dynamic plasmapause model: 1. Database and statistics, J. Geophys. Res. Space Physics, 122(7), 7153, doi:10.1002/2017ja023912.DstAESYM-H
    338. Zhao, H., et al. (2017), On the relation between radiation belt electrons and solar wind parameters/geomagnetic indices: Dependence on the first adiabatic invariant and L*, J. Geophys. Res. Space Physics, 122(2), 1624, doi:10.1002/2016ja023658.DstAESYM-HSYM-D
    339. Zhao, H., et al. (2017), Van Allen Probes Measurements of Energetic Particle Deep Penetration Into the Low L Region (L < 4) During the Storm on 8 April 2016, J. Geophys. Res. Space Physics, 122(12), 12,140, doi:10.1002/2017ja024558.AESYM-H
    340. Zhelavskaya, I. S., Y. Y. Shprits, and M. Spasojević (2017), Empirical Modeling of the Plasmasphere Dynamics Using Neural Networks, J. Geophys. Res. Space Physics, 122(11), 11,227, doi:10.1002/2017ja024406.DstAESYM-H
    341. Zhou, C., Q. Tang, X. Song, H. Qing, Y. Liu, X. Wang, X. Gu, B. Ni, and Z. Zhao (2017), A statistical analysis of sporadic E layer occurrence in the midlatitude China region, J. Geophys. Res. Space Physics, 122(3), 3617, doi:10.1002/2016ja023135.AESYM-HSYM-D
    342. Zhou, X., G. Haerendel, J. I. Moen, E. Trondsen, L. Clausen, R. J. Strangeway, B. Lybekk, and D. A. Lorentzen (2017), Shock aurora: Field-aligned discrete structures moving along the dawnside oval, J. Geophys. Res. Space Physics, 122(3), 3145, doi:10.1002/2016ja022666.SYM-H
    343. Zoennchen, J. H., U. Nass, H. J. Fahr, and J. Goldstein (2017), The response of the H geocorona between 3 and 8 Re to geomagnetic disturbances studied using TWINS stereo Lyman-α data, Ann. Geophys., 35(1), 171, doi:10.5194/angeo-35-171-2017.Dst
    344. Zolotukhina, N., N. Polekh, V. Kurkin, D. Rogov, E. Romanova, and M. Chelpanov (2017), Ionospheric effects of St. Patrick's storm over Asian Russia: 17-19 March 2015, J. Geophys. Res. Space Physics, 122(2), 2484, doi:10.1002/2016ja023180.DstAESYM-H
    345. Zou, S., A. Ridley, X. Jia, E. Boyd, M. Nicolls, A. Coster, E. Thomas, and J. M. Ruohoniemi (2017), PFISR observation of intense ion upflow fluxes associated with an SED during the 1 June 2013 geomagnetic storm, J. Geophys. Res. Space Physics, 122(2), 2589, doi:10.1002/2016ja023697.SYM-H
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    347. Zou, Y., Y. Nishimura, L. R. Lyons, and K. Shiokawa (2017), Localized polar cap precipitation in association with nonstorm time airglow patches, Geophys. Res. Lett., 44(2), 609, doi:10.1002/2016gl071168.Dst
    348. Ødegaard, L.-K. G., H. N. Tyssøy, F. Søraas, J. Stadsnes, and M. I. Sandanger (2017), Energetic electron precipitation in weak to moderate corotating interaction region-driven storms, J. Geophys. Res. Space Physics, 122(3), 2900, doi:10.1002/2016ja023096.Dst

    2016 348 papers↑ top

    1. Aakjær, C. D., N. Olsen, and C. C. Finlay (2016), Determining polar ionospheric electrojet currents from Swarm satellite constellation magnetic data, Earth Planets Space, 68(1), 140, doi:10.1186/s40623-016-0509-y.AE
    2. Adebesin, B. O., A. Pulkkinen, and C. M. Ngwira (2016), The interplanetary and magnetospheric causes of extreme dB/dt at equatorial locations, Geophys. Res. Lett., 43(22), 11,501, doi:10.1002/2016gl071526.DstSYM-HSYM-D
    3. Adriani, O., et al. (2016), PAMELA's measurements of geomagnetic cutoff variations during the 14 December 2006 storm, Space Weather, 14(3), 210, doi:10.1002/2016sw001364.SYM-HSYM-D
    4. Alberti, T., M. Piersanti, A. Vecchio, P. De Michelis, F. Lepreti, V. Carbone, and L. Primavera (2016), Identification of the different magnetic field contributions during a geomagnetic storm in magnetospheric and ground observations, Ann. Geophys., 34(11), 1069, doi:10.5194/angeo-34-1069-2016.Dst
    5. Alfonsi, L., et al. (2016), First Observations of GNSS Ionospheric Scintillations From DemoGRAPE Project, Space Weather, 14(10), 704, doi:10.1002/2016sw001488.Dst
    6. Alken, P. (2016), Observations and modeling of the ionospheric gravity and diamagnetic current systems from CHAMP and Swarm measurements, J. Geophys. Res. Space Physics, 121(1), 589, doi:10.1002/2015ja022163.Dst
    7. Allen, R. C., J.-C. Zhang, L. M. Kistler, H. E. Spence, R.-L. Lin, B. Klecker, M. W. Dunlop, M. André, and V. K. Jordanova (2016), A statistical study of EMIC waves observed by Cluster: 2. Associated plasma conditions, J. Geophys. Res. Space Physics, 121(7), 6458, doi:10.1002/2016ja022541.Dst
    8. Allen, R. C., S. A. Livi, and J. Goldstein (2016), Variations of oxygen charge state abundances in the global magnetosphere, as observed by Polar, J. Geophys. Res. Space Physics, 121(2), 1091, doi:10.1002/2015ja021765.DstAE
    9. Allen, R. C., S. A. Livi, S. K. Vines, and J. Goldstein (2016), Magnetic latitude dependence of oxygen charge states in the global magnetosphere: Insights into solar wind-originating ion injection, J. Geophys. Res. Space Physics, 121(10), 9888, doi:10.1002/2016ja022925.Dst
    10. Alves, L. R., et al. (2016), Outer radiation belt dropout dynamics following the arrival of two interplanetary coronal mass ejections, Geophys. Res. Lett., 43(3), 978, doi:10.1002/2015gl067066.AESYM-H
    11. Andreeva, V. A., and N. A. Tsyganenko (2016), Reconstructing the magnetosphere from data using radial basis functions, J. Geophys. Res. Space Physics, 121(3), 2249, doi:10.1002/2015ja022242.SYM-HSYM-D
    12. Andriyas, T. (2016), Auroral boundary movement rates during substorm onsets and their correspondence to solar wind and the AL index, J. Atmos. Sol.-Terr. Phys., 146, 129, doi:10.1016/j.jastp.2016.05.015.AE
    13. Araki, T., and A. Shinbori (2016), Relationship between solar wind dynamic pressure and amplitude of geomagnetic sudden commencement (SC), Earth Planets Space, 68(1), 90, doi:10.1186/s40623-016-0444-y.DstSYM-H
    14. Aryan, H., D. Sibeck, M. Balikhin, O. Agapitov, and C. Kletzing (2016), Observation of chorus waves by the Van Allen Probes: Dependence on solar wind parameters and scale size, J. Geophys. Res. Space Physics, 121(8), 7608, doi:10.1002/2016ja022775.Dst
    15. Aschwanden, M. J., et al. (2016), 25 Years of Self-Organized Criticality: Solar and Astrophysics, Space Sci. Rev., 198(1-4), 47, doi:10.1007/s11214-014-0054-6.DstAE
    16. Astafyeva, E., I. Zakharenkova, and P. Alken (2016), Prompt penetration electric fields and the extreme topside ionospheric response to the June 22–23, 2015 geomagnetic storm as seen by the Swarm constellation, Earth Planets Space, 68(1), 152, doi:10.1186/s40623-016-0526-x.AESYM-H
    17. Astafyeva, E., I. Zakharenkova, and Y. Pineau (2016), Occurrence of the dayside three-peak density structure in the F2 and the topside ionosphere, J. Geophys. Res. Space Physics, 121(7), 6936, doi:10.1002/2016ja022641.DstSYM-H
    18. Bailey, R. L., and R. Leonhardt (2016), Automated detection of geomagnetic storms with heightened risk of GIC, Earth Planets Space, 68(1), 99, doi:10.1186/s40623-016-0477-2.Dst
    19. Baker, D. N., et al. (2016), A telescopic and microscopic examination of acceleration in the June 2015 geomagnetic storm: Magnetospheric Multiscale and Van Allen Probes study of substorm particle injection, Geophys. Res. Lett., 43(12), 6051, doi:10.1002/2016gl069643.AESYM-H
    20. Baker, D. N., et al. (2016), Highly relativistic radiation belt electron acceleration, transport, and loss: Large solar storm events of March and June 2015, J. Geophys. Res. Space Physics, 121(7), 6647, doi:10.1002/2016ja022502.Dst
    21. Balikhin, M. A., J. V. Rodriguez, R. J. Boynton, S. N. Walker, H. Aryan, D. G. Sibeck, and S. A. Billings (2016), Comparative analysis of NOAA REFM and SNB3GEO tools for the forecast of the fluxes of high-energy electrons at GEO, Space Weather, 14(1), 22, doi:10.1002/2015sw001303.Dst
    22. Bandić, M., G. Verbanac, M. B. Moldwin, V. Pierrard, and G. Piredda (2016), MLT dependence in the relationship between plasmapause, solar wind, and geomagnetic activity based on CRRES: 1990-1991, J. Geophys. Res. Space Physics, 121(5), 4397, doi:10.1002/2015ja022278.DstAE
    23. Beharrell, M. J., and F. Honary (2016), Decoding solar wind-magnetosphere coupling, Space Weather, 14(10), 724, doi:10.1002/2016sw001467.DstAESYM-HSYM-D
    24. Behera, J. K., A. K. Sinha, G. Vichare, O. Kozyreva, R. Rawat, and A. Dhar (2016), Dayside cosmic noise absorption at the equatorward boundary of auroral oval as observed from Maitri, Antarctica (L = 5; CGM 62.45°S, 55.45°E), J. Geophys. Res. Space Physics, 121(4), 3198, doi:10.1002/2016ja022418.DstAESYM-H
    25. Bisoi, S. K., D. Chakrabarty, P. Janardhan, R. G. Rastogi, A. Yoshikawa, K. Fujiki, M. Tokumaru, and Y. Yan (2016), The prolonged southward IMF-Bz event of 2-4 May 1998: Solar, interplanetary causes and geomagnetic consequences, J. Geophys. Res. Space Physics, 121(5), 3882, doi:10.1002/2015ja022185.AE
    26. Blagoveshchensky, D. V., and M. A. Sergeeva (2016), Ionosphere dynamics in the auroral zone during the magnetic storm of March 17-18, 2015, J. Atmos. Sol.-Terr. Phys., 149, 151, doi:10.1016/j.jastp.2016.06.016.DstAE
    27. Boberg, P. R., D. F. Smart, M. A. Shea, and A. J. Tylka (2016), Comparisons of geomagnetic transmission measurements with modified Tsyganenko 1989 model calculations for the October 1989 Solar Energetic Particle events, Adv. Space Res., 57(2), 681, doi:10.1016/j.asr.2015.10.027.DstSYM-H
    28. Bolaji, O. S., et al. (2016), Solar quiet current response in the African sector due to a 2009 sudden stratospheric warming event, J. Geophys. Res. Space Physics, 121(8), 8055, doi:10.1002/2016ja022857.Dst
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    312. Xiong, C., C. Stolle, and H. Lühr (2016), The Swarm satellite loss of GPS signal and its relation to ionospheric plasma irregularities, Space Weather, 14(8), 563, doi:10.1002/2016sw001439.SYM-H
    313. Xiong, C., H. Lühr, and B. G. Fejer (2016), The response of equatorial electrojet, vertical plasma drift, and thermospheric zonal wind to enhanced solar wind input, J. Geophys. Res. Space Physics, 121(6), 5653, doi:10.1002/2015ja022133.Dst
    314. Xiong, Y., Z. Yuan, and J. Wang (2016), Energetic ions scattered into the loss cone with observations of the Cluster satellite, Ann. Geophys., 34(2), 249, doi:10.5194/angeo-34-249-2016.AESYM-HSYM-D
    315. Yadav, S., S. Sunda, and R. Sridharan (2016), The impact of the 17 March 2015 St. Patrick's Day storm on the evolutionary pattern of equatorial ionization anomaly over the Indian longitudes using high-resolution spatiotemporal TEC maps: New insights, Space Weather, 14(10), 786, doi:10.1002/2016sw001408.AESYM-H
    316. Yahnin, A. G., T. A. Yahnina, N. V. Semenova, B. B. Gvozdevsky, and A. B. Pashin (2016), Relativistic electron precipitation as seen by NOAA POES, J. Geophys. Res. Space Physics, 121(9), 8286, doi:10.1002/2016ja022765.Dst
    317. Yamazaki, Y., K. Häusler, and J. A. Wild (2016), Day-to-day variability of midlatitude ionospheric currents due to magnetospheric and lower atmospheric forcing, J. Geophys. Res. Space Physics, 121(7), 7067, doi:10.1002/2016ja022817.Dst
    318. Yang, J., F. R. Toffoletto, and R. A. Wolf (2016), Comparison study of ring current simulations with and without bubble injections, J. Geophys. Res. Space Physics, 121(1), 374, doi:10.1002/2015ja021901.Dst
    319. Yang, N., H. Le, and L. Liu (2016), Statistical analysis of the mid-latitude trough position during different categories of magnetic storms and different storm intensities, Earth Planets Space, 68(1), 171, doi:10.1186/s40623-016-0554-6.Dst
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    321. Yao, Y., L. Liu, J. Kong, and C. Zhai (2016), Analysis of the global ionospheric disturbances of the March 2015 great storm, J. Geophys. Res. Space Physics, 121(12), 12,157, doi:10.1002/2016ja023352.AESYM-H
    322. Yizengaw, E., et al. (2016), Response of the equatorial ionosphere to the geomagnetic DP 2 current system, Geophys. Res. Lett., 43(14), 7364, doi:10.1002/2016gl070090.Dst
    323. Yiğit, E., H. U. Frey, M. B. Moldwin, T. J. Immel, and A. J. Ridley (2016), Hemispheric differences in the response of the upper atmosphere to the August 2011 geomagnetic storm: A simulation study, J. Atmos. Sol.-Terr. Phys., 141, 13, doi:10.1016/j.jastp.2015.10.002.DstAE
    324. Yu, Y., V. K. Jordanova, A. J. Ridley, J. M. Albert, R. B. Horne, and C. A. Jeffery (2016), A new ionospheric electron precipitation module coupled with RAM-SCB within the geospace general circulation model, J. Geophys. Res. Space Physics, 121(9), 8554, doi:10.1002/2016ja022585.DstSYM-H
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    328. Yue, X., W. S. Schreiner, N. M. Pedatella, and Y.-H. Kuo (2016), Characterizing GPS radio occultation loss of lock due to ionospheric weather, Space Weather, 14(4), 285, doi:10.1002/2015sw001340.AE
    329. Yue, X., W. Wan, L. Liu, J. Liu, S. Zhang, W. S. Schreiner, B. Zhao, and L. Hu (2016), Mapping the conjugate and corotating storm-enhanced density during 17 March 2013 storm through data assimilation, J. Geophys. Res. Space Physics, 121(12), 12,202, doi:10.1002/2016ja023038.Dst
    330. Zakharenkova, I., E. Astafyeva, and I. Cherniak (2016), GPS and GLONASS observations of large-scale traveling ionospheric disturbances during the 2015 St. Patrick's Day storm, J. Geophys. Res. Space Physics, 121(12), 12,138, doi:10.1002/2016ja023332.AESYM-H
    331. Zhang, B., et al. (2016), Effects of magnetospheric lobe cell convection on dayside upper thermospheric winds at high latitudes, Geophys. Res. Lett., 43(16), 8348, doi:10.1002/2016gl069834.AE
    332. Zhang, J. J., C. Wang, T. R. Sun, and Y. D. Liu (2016), Risk assessment of the extreme interplanetary shock of 23 July 2012 on low-latitude power networks, Space Weather, 14(3), 259, doi:10.1002/2015sw001347.SYM-HSYM-D
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    335. Zhang, L. Q., W. Baumjohann, C. Wang, L. Dai, and B. B. Tang (2016), Bursty bulk flows at different magnetospheric activity levels: Dependence on IMF conditions, J. Geophys. Res. Space Physics, 121(9), 8773, doi:10.1002/2016ja022397.AE
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    2015 313 papers↑ top

    1. Abdu, M. A., C. G. Brum, P. P. Batista, S. Gurubaran, D. Pancheva, J. V. Bageston, I. S. Batista, and H. Takahashi (2015), Fast and ultrafast Kelvin wave modulations of the equatorial evening F region vertical drift and spread F development, Earth Planets Space, 67, 1, doi:10.1186/s40623-014-0143-5.AE
    2. Adebiyi, S. J., I. A. Adimula, and O. A. Oladipo (2015), Investigation on mid-latitude stations to storm-time variations of GPS-TEC, Adv. Space Res., 55(5), 1339, doi:10.1016/j.asr.2014.11.030.DstAE
    3. Agapitov, O. V., A. V. Artemyev, D. Mourenas, F. S. Mozer, and V. Krasnoselskikh (2015), Empirical model of lower band chorus wave distribution in the outer radiation belt, J. Geophys. Res. Space Physics, 120(12), 10,425, doi:10.1002/2015ja021829.Dst
    4. Ali, A. F., S. R. Elkington, W. Tu, L. G. Ozeke, A. A. Chan, and R. H. W. Friedel (2015), Magnetic field power spectra and magnetic radial diffusion coefficients using CRRES magnetometer data, J. Geophys. Res. Space Physics, 120(2), 973, doi:10.1002/2014ja020419.AE
    5. Allen, R. C., J.-C. Zhang, L. M. Kistler, H. E. Spence, R.-L. Lin, B. Klecker, M. W. Dunlop, M. André, and V. K. Jordanova (2015), A statistical study of EMIC waves observed by Cluster: 1. Wave properties, J. Geophys. Res. Space Physics, 120(7), 5574, doi:10.1002/2015ja021333.Dst
    6. Anderson, B. R., R. M. Millan, G. D. Reeves, and R. H. W. Friedel (2015), Acceleration and loss of relativistic electrons during small geomagnetic storms, Geophys. Res. Lett., 42(23), 10,113, doi:10.1002/2015gl066376.Dst
    7. Andriyas, T., and S. Andriyas (2015), Relevance vector machines as a tool for forecasting geomagnetic storms during years 1996-2007, J. Atmos. Sol.-Terr. Phys., 125, 10, doi:10.1016/j.jastp.2015.02.005.Dst
    8. Antonova, E. E., and M. V. Stepanova (2015), The problem of the acceleration of electrons of the outer radiation belt and magnetospheric substorms, Earth Planets Space, 67, 148, doi:10.1186/s40623-015-0319-7.DstAESYM-H
    9. Antonova, E. E., V. G. Vorobjev, I. P. Kirpichev, O. I. Yagodkina, and M. V. Stepanova (2015), Problems with mapping the auroral oval and magnetospheric substorms, Earth Planets Space, 67, 166, doi:10.1186/s40623-015-0336-6.Dst
    10. Archer, M. O., and F. Plaschke (2015), What frequencies of standing surface waves can the subsolar magnetopause support?, J. Geophys. Res. Space Physics, 120(5), 3632, doi:10.1002/2014ja020545.Dst
    11. Archer, W. E., D. J. Knudsen, J. K. Burchill, M. R. Patrick, and J. P. St.-Maurice (2015), Anisotropic core ion temperatures associated with strong zonal flows and upflows, Geophys. Res. Lett., 42(4), 981, doi:10.1002/2014gl062695.AE
    12. Artemyev, A. V., O. V. Agapitov, F. S. Mozer, and H. Spence (2015), Butterfly pitch angle distribution of relativistic electrons in the outer radiation belt: Evidence of nonadiabatic scattering, J. Geophys. Res. Space Physics, 120(6), 4279, doi:10.1002/2014ja020865.DstAE
    13. Astafyeva, E., and I. Zakharenkova (2015), First detection of the supersonic upward plasma flow structures in the early morning sector, Geophys. Res. Lett., 42(22), 9642, doi:10.1002/2015gl066369.SYM-H
    14. Astafyeva, E., I. Zakharenkova, and E. Doornbos (2015), Opposite hemispheric asymmetries during the ionospheric storm of 29-31 August 2004, J. Geophys. Res. Space Physics, 120(1), 697, doi:10.1002/2014ja020710.DstAESYM-HSYM-D
    15. Astafyeva, E., I. Zakharenkova, and M. Förster (2015), Ionospheric response to the 2015 St. Patrick's Day storm: A global multi-instrumental overview, J. Geophys. Res. Space Physics, 120(10), 9023, doi:10.1002/2015ja021629.SYM-H
    16. Azzouzi, I., Y. Migoya-Orué, C. Amory Mazaudier, R. Fleury, S. M. Radicella, and A. Touzani (2015), Signatures of solar event at middle and low latitudes in the Europe-African sector, during geomagnetic storms, October 2013, Adv. Space Res., 56(9), 2040, doi:10.1016/j.asr.2015.06.010.AE
    17. Badruddin, K. A. (2015), Study of the Forbush Decreases, Geomagnetic Storms, and Ground-Level Enhancements in Selected Intervals and Their Space Weather Implications, Sol. Phys., 290(4), 1271, doi:10.1007/s11207-015-0665-4.Dst
    18. Bala, R., P. Reiff, and C. T. Russell (2015), Testing the estimated hypothetical response of a major CME impact on Earth and its implications to space weather, J. Geophys. Res. Space Physics, 120(5), 3432, doi:10.1002/2014ja020739.Dst
    19. Banerjee, A., A. Bej, and T. N. Chatterjee (2015), A cellular automata-based model of Earth's magnetosphere in relation with Dst index, Space Weather, 13(5), 259, doi:10.1002/2014sw001138.DstSYM-H
    20. Beharrell, M. J., F. Honary, C. J. Rodger, and M. A. Clilverd (2015), Substorm-induced energetic electron precipitation: Morphology and prediction, J. Geophys. Res. Space Physics, 120(4), 2993, doi:10.1002/2014ja020632.AESYM-H
    21. Behera, J. K., A. K. Sinha, A. K. Singh, G. Vichare, A. Dhar, S. Labde, and K. Jeeva (2015), Substorm related CNA near equatorward boundary of the auroral oval in relation to interplanetary conditions, Adv. Space Res., 56(1), 28, doi:10.1016/j.asr.2015.03.036.DstAESYM-H
    22. Belov, A., A. Abunin, M. Abunina, E. Eroshenko, V. Oleneva, V. Yanke, A. Papaioannou, and H. Mavromichalaki (2015), Galactic Cosmic Ray Density Variations in Magnetic Clouds, Sol. Phys., 290(5), 1429, doi:10.1007/s11207-015-0678-z.Dst
    23. Berngardt, O. I., N. A. Zolotukhina, and A. V. Oinats (2015), Observations of field-aligned ionospheric irregularities during quiet and disturbed conditions with EKB radar: first results, Earth Planets Space, 67, 143, doi:10.1186/s40623-015-0302-3.AESYM-H
    24. Blum, L. W., et al. (2015), Observations of coincident EMIC wave activity and duskside energetic electron precipitation on 18-19 January 2013, Geophys. Res. Lett., 42(14), 5727, doi:10.1002/2015gl065245.SYM-H
    25. Blum, L., X. Li, and M. Denton (2015), Rapid MeV electron precipitation as observed by SAMPEX/HILT during high-speed stream-driven storms, J. Geophys. Res. Space Physics, 120(5), 3783, doi:10.1002/2014ja020633.Dst
    26. Carter, B. A., E. Yizengaw, R. Pradipta, A. J. Halford, R. Norman, and K. Zhang (2015), Interplanetary shocks and the resulting geomagnetically induced currents at the equator, Geophys. Res. Lett., 42(16), 6554, doi:10.1002/2015gl065060.SYM-HSYM-D
    27. Catherine, J. K., M. S. M. Vijayan, U. B. Syeda Rabiya, K. Shimna, V. K. Gahalaut, and D. S. Ramesh (2015), Dichotomy in mode propagation of coseismic ionospheric disturbance: Observations from 11 April 2012 Indian Ocean earthquake, J. Geophys. Res. Space Physics, 120(5), 3854, doi:10.1002/2014ja020621.Dst
    28. Cattell, C. A., A. W. Breneman, S. A. Thaller, J. R. Wygant, C. A. Kletzing, and W. S. Kurth (2015), Van Allen Probes observations of unusually low frequency whistler mode waves observed in association with moderate magnetic storms: Statistical study, Geophys. Res. Lett., 42(18), 7273, doi:10.1002/2015gl065565.DstAE
    29. Chakrabarty, D., D. Rout, R. Sekar, R. Narayanan, G. D. Reeves, T. K. Pant, B. Veenadhari, and K. Shiokawa (2015), Three different types of electric field disturbances affecting equatorial ionosphere during a long-duration prompt penetration event, J. Geophys. Res. Space Physics, 120(6), 4993, doi:10.1002/2014ja020759.AESYM-HSYM-DASY-H
    30. Chambodut, A., A. Marchaudon, C. Lathuillère, M. Menvielle, and E. Foucault (2015), New hemispheric geomagnetic indices α with 15 min time resolution, J. Geophys. Res. Space Physics, 120(11), 9943, doi:10.1002/2015ja021479.SYM-H
    31. Chaston, C. C., J. W. Bonnell, C. A. Kletzing, G. B. Hospodarsky, J. R. Wygant, and C. W. Smith (2015), Broadband low-frequency electromagnetic waves in the inner magnetosphere, J. Geophys. Res. Space Physics, 120(10), 8603, doi:10.1002/2015ja021690.DstAE
    32. Chaston, C. C., J. W. Bonnell, J. R. Wygant, C. A. Kletzing, G. D. Reeves, A. Gerrard, L. Lanzerotti, and C. W. Smith (2015), Extreme ionospheric ion energization and electron heating in Alfvén waves in the storm time inner magnetosphere, Geophys. Res. Lett., 42(24), 10,531, doi:10.1002/2015gl066674.DstAE
    33. Chen, G., C. Wu, X. Huang, Z. Zhao, D. Zhong, H. Qi, L. Huang, L. Qiao, and J. Wang (2015), Plasma flux and gravity waves in the midlatitude ionosphere during the solar eclipse of 20 May 2012, J. Geophys. Res. Space Physics, 120(4), 3009, doi:10.1002/2014ja020849.DstAE
    34. Chen, M. W., C. L. Lemon, K. Orlova, Y. Shprits, J. Hecht, and R. L. Walterscheid (2015), Comparison of simulated and observed trapped and precipitating electron fluxes during a magnetic storm, Geophys. Res. Lett., 42(20), 8302, doi:10.1002/2015gl065737.DstSYM-H
    35. Chen, M. W., C. L. Lemon, T. B. Guild, A. M. Keesee, A. Lui, J. Goldstein, J. V. Rodriguez, and P. C. Anderson (2015), Effects of modeled ionospheric conductance and electron loss on self-consistent ring current simulations during the 5-7 April 2010 storm, J. Geophys. Res. Space Physics, 120(7), 5355, doi:10.1002/2015ja021285.DstSYM-H
    36. Chen, Y., W. Wang, A. G. Burns, S. Liu, J. Gong, X. Yue, G. Jiang, and A. Coster (2015), Ionospheric response to CIR-induced recurrent geomagnetic activity during the declining phase of solar cycle 23, J. Geophys. Res. Space Physics, 120(2), 1394, doi:10.1002/2014ja020657.DstAE
    37. Chen, Y.-J., R. A. Heelis, and J. A. Cumnock (2015), Response of the ionospheric convection reversal boundary at high latitudes to changes in the interplanetary magnetic field, J. Geophys. Res. Space Physics, 120(6), 5022, doi:10.1002/2015ja021024.Dst
    38. Cherniak, I., and I. Zakharenkova (2015), Dependence of the high-latitude plasma irregularities on the auroral activity indices: a case study of 17 March 2015 geomagnetic storm, Earth Planets Space, 67, 151, doi:10.1186/s40623-015-0316-x.AESYM-H
    39. Cherniak, I., I. Zakharenkova, and R. J. Redmon (2015), Dynamics of the high-latitude ionospheric irregularities during the 17 March 2015 St. Patrick's Day storm: Ground-based GPS measurements, Space Weather, 13(9), 585, doi:10.1002/2015sw001237.SYM-H
    40. Chertok, I. M., M. A. Abunina, A. A. Abunin, A. V. Belov, and V. V. Grechnev (2015), Relationship Between the Magnetic Flux of Solar Eruptions and the Ap Index of Geomagnetic Storms, Sol. Phys., 290(2), 627, doi:10.1007/s11207-014-0618-3.Dst
    41. Chi, P. J., and G. Le (2015), Observations of magnetospheric high-m poloidal waves by ST-5 satellites in low Earth orbit during geomagnetically quiet times, J. Geophys. Res. Space Physics, 120(6), 4776, doi:10.1002/2015ja021145.Dst
    42. Cho, J., D.-Y. Lee, J.-H. Kim, D.-K. Shin, K.-C. Kim, and D. Turner (2015), New model fit functions of the plasmapause location determined using THEMIS observations during the ascending phase of Solar Cycle 24, J. Geophys. Res. Space Physics, 120(4), 2877, doi:10.1002/2015ja021030.DstAE
    43. Choudhury, A., B. K. De, A. Guha, and R. Roy (2015), Long-duration geomagnetic storm effects on the D region of the ionosphere: Some case studies using VLF signal, J. Geophys. Res. Space Physics, 120(1), 778, doi:10.1002/2014ja020738.DstAE
    44. Chu, X., R. L. McPherron, T.-S. Hsu, and V. Angelopoulos (2015), Solar cycle dependence of substorm occurrence and duration: Implications for onset, J. Geophys. Res. Space Physics, 120(4), 2808, doi:10.1002/2015ja021104.AE
    45. Chu, X., R. L. McPherron, T.-S. Hsu, V. Angelopoulos, Z. Pu, Z. Yao, H. Zhang, and M. Connors (2015), Magnetic mapping effects of substorm currents leading to auroral poleward expansion and equatorward retreat, J. Geophys. Res. Space Physics, 120(1), 253, doi:10.1002/2014ja020596.AE
    46. Cid, C., E. Saiz, A. Guerrero, J. Palacios, and Y. Cerrato (2015), A Carrington-like geomagnetic storm observed in the 21st century, J. Space Weather Space Clim., 5, A16, doi:10.1051/swsc/2015017.DstSYM-H
    47. Civet, F., E. Thébault, O. Verhoeven, B. Langlais, and D. Saturnino (2015), Electrical conductivity of the Earth's mantle from the first Swarm magnetic field measurements, Geophys. Res. Lett., 42(9), 3338, doi:10.1002/2015gl063397.Dst
    48. Clausen, L. B. N., and J. I. Moen (2015), Electron density enhancements in the polar cap during periods of dayside reconnection, J. Geophys. Res. Space Physics, 120(6), 4452, doi:10.1002/2015ja021188.AESYM-H
    49. Clilverd, M. A., et al. (2015), Electron precipitation from EMIC waves: A case study from 31 May 2013, J. Geophys. Res. Space Physics, 120(5), 3618, doi:10.1002/2015ja021090.AE
    50. Colaninno, R. C., and A. Vourlidas (2015), Using Multiple-viewpoint Observations to Determine the Interaction of Three Coronal Mass Ejections Observed on 2012 March 5, Astrophys. J., 815(1), 70, doi:10.1088/0004-637x/815/1/70.Dst
    51. Connors, M., and G. Rostoker (2015), Inverting magnetic meridian data using nonlinear optimization, Earth Planets Space, 67, 155, doi:10.1186/s40623-015-0315-y.AE
    52. Connors, M., C. T. Russell, X. Chu, and R. L. McPherron (2015), The February 24, 2010 substorm: a refined view involving a pseudobreakup/expansive phase/poleward boundary intensification sequence, Earth Planets Space, 67, 195, doi:10.1186/s40623-015-0363-3.AE
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    239. Sumod, S. G., T. K. Pant, C. Vineeth, and M. M. Hossain (2015), Unusual depletion of OI 630.0 nm dayglow and simultaneous mesopause heating during the penetration of interplanetary electric field over dip equator, J. Geophys. Res. Space Physics, 120(3), 2110, doi:10.1002/2014ja020584.SYM-H
    240. Suvorova, A. V., C.-M. Huang, L.-C. Tsai, A. V. Dmitriev, and K. G. Ratovsky (2015), Long-duration positive ionospheric storm during the December 2006 geomagnetic storm: Ionizing effect of forbidden electrons, Adv. Space Res., 56(9), 2001, doi:10.1016/j.asr.2015.06.001.DstSYM-H
    241. Taguchi, S., A. Tawara, M. R. Hairston, J. A. Slavin, G. Le, J. Matzka, and C. Stolle (2015), Response of reverse convection to fast IMF transitions, J. Geophys. Res. Space Physics, 120(5), 4020, doi:10.1002/2015ja021002.AE
    242. Takahashi, K., et al. (2015), Externally driven plasmaspheric ULF waves observed by the Van Allen Probes, J. Geophys. Res. Space Physics, 120(1), 526, doi:10.1002/2014ja020373.Dst
    243. Takahashi, N., Y. Kasaba, A. Shinbori, Y. Nishimura, T. Kikuchi, Y. Ebihara, and T. Nagatsuma (2015), Response of ionospheric electric fields at mid-low latitudes during sudden commencements, J. Geophys. Res. Space Physics, 120(6), 4849, doi:10.1002/2015ja021309.SYM-H
    244. Tanaka, Y., et al. (2015), Eastward-expanding auroral surges observed in the post-midnight sector during a multiple-onset substorm, Earth Planets Space, 67, 182, doi:10.1186/s40623-015-0350-8.AE
    245. Tang, J., Y. Yao, L. Zhang, and J. Kong (2015), Tomographic reconstruction of ionospheric electron density during the storm of 5-6 August 2011 using multi-source data, Sci. Rep., 5, 13042, doi:10.1038/srep13042.DstAESYM-H
    246. Tariku, Y. A. (2015), TEC prediction performance of IRI-2012 model during a very low and a high solar activity phase over equatorial regions, Uganda, J. Geophys. Res. Space Physics, 120(7), 5973, doi:10.1002/2015ja021203.Dst
    247. Teh, W.-L., M. Abdullah, and A. M. Hasbi (2015), Lack of relationship between geoeffectiveness and orientations of magnetic clouds with bipolar Bz and unipolar southward Bz, Planet. Space Sci., 115, 27, doi:10.1016/j.pss.2014.11.021.DstSYM-H
    248. Temerin, M., and X. Li (2015), The Dst index underestimates the solar cycle variation of geomagnetic activity, J. Geophys. Res. Space Physics, 120(7), 5603, doi:10.1002/2015ja021467.Dst
    249. Tesema, F., B. Damtie, and M. Nigussie (2015), The response of the ionosphere to intense geomagnetic storms in 2012 using GPS-TEC data from East Africa longitudinal sector, J. Atmos. Sol.-Terr. Phys., 135, 143, doi:10.1016/j.jastp.2015.10.021.AESYM-H
    250. Thaller, S. A., et al. (2015), Van Allen Probes investigation of the large-scale duskward electric field and its role in ring current formation and plasmasphere erosion in the 1 June 2013 storm, J. Geophys. Res. Space Physics, 120(6), 4531, doi:10.1002/2014ja020875.Dst
    251. Thomas, N., G. Vichare, A. K. Sinha, and R. Rawat (2015), Low-latitude Pi2 oscillations observed by polar Low Earth Orbiting satellite, J. Geophys. Res. Space Physics, 120(9), 7838, doi:10.1002/2014ja020958.AE
    252. Troshichev, O. A., and D. A. Sormakov (2015), PC index as a proxy of the solar wind energy that entered into the magnetosphere: 2. Relation to the interplanetary electric field E KL before substorm onset, Earth Planets Space, 67, 170, doi:10.1186/s40623-015-0338-4.AE
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    262. van der Meeren, C., K. Oksavik, D. A. Lorentzen, M. T. Rietveld, and L. B. N. Clausen (2015), Severe and localized GNSS scintillation at the poleward edge of the nightside auroral oval during intense substorm aurora, J. Geophys. Res. Space Physics, 120(12), 10,607, doi:10.1002/2015ja021819.AE
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    264. Verkhoglyadova, O. P., A. J. Mannucci, B. T. Tsurutani, M. G. Mlynczak, L. A. Hunt, R. J. Redmon, and J. C. Green (2015), Localized thermosphere ionization events during the high-speed stream interval of 29 April to 5 May 2011, J. Geophys. Res. Space Physics, 120(1), 675, doi:10.1002/2014ja020535.AESYM-HSYM-D
    265. Verkhoglyadova, O. P., S. Wang, M. G. Mlynczak, L. A. Hunt, and G. P. Zank (2015), Effects of two large solar energetic particle events on middle atmosphere nighttime odd hydrogen and ozone content: Aura/MLS and TIMED/SABER measurements, J. Geophys. Res. Space Physics, 120(1), 12, doi:10.1002/2014ja020609.DstSYM-HSYM-D
    266. Walach, M.-T., and S. E. Milan (2015), Are steady magnetospheric convection events prolonged substorms?, J. Geophys. Res. Space Physics, 120(3), 1751, doi:10.1002/2014ja020631.AESYM-H
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    271. Watthanasangmechai, K., M. Yamamoto, A. Saito, T. Maruyama, T. Yokoyama, M. Nishioka, and M. Ishii (2015), Temporal change of EIA asymmetry revealed by a beacon receiver network in Southeast Asia, Earth Planets Space, 67, 75, doi:10.1186/s40623-015-0252-9.DstAE
    272. Welling, D. T., et al. (2015), The Earth: Plasma Sources, Losses, and Transport Processes, Space Sci. Rev., 192(1-4), 145, doi:10.1007/s11214-015-0187-2.AE
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    274. Woodger, L. A., A. J. Halford, R. M. Millan, M. P. McCarthy, D. M. Smith, G. S. Bowers, J. G. Sample, B. R. Anderson, and X. Liang (2015), A summary of the BARREL campaigns: Technique for studying electron precipitation, J. Geophys. Res. Space Physics, 120(6), 4922, doi:10.1002/2014ja020874.SYM-H
    275. Wu, C.-C., and R. P. Lepping (2015), Comparisons of Characteristics of Magnetic Clouds and Cloud-Like Structures During 1995 - 2012, Sol. Phys., 290(4), 1243, doi:10.1007/s11207-015-0656-5.Dst
    276. Wu, Q., B. A. Emery, S. G. Shepherd, J. M. Ruohoniemi, N. A. Frissell, and J. Semeter (2015), High-latitude thermospheric wind observations and simulations with SuperDARN data driven NCAR TIEGCM during the December 2006 magnetic storm, J. Geophys. Res. Space Physics, 120(7), 6021, doi:10.1002/2015ja021026.AE
    277. Xiao, F., et al. (2015), Penetration of magnetosonic waves into the plasmasphere observed by the Van Allen Probes, Geophys. Res. Lett., 42(18), 7287, doi:10.1002/2015gl065745.SYM-H
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    279. Xing, X., C.-P. Wang, J. Liang, and L. R. Lyons (2015), Plasma sheet Pi2 pulsations associated with bursty bulk flows, J. Geophys. Res. Space Physics, 120(10), 8692, doi:10.1002/2015ja021668.AE
    280. Xiong, Y., et al. (2015), Responses of relativistic electron fluxes in the outer radiation belt to geomagnetic storms, J. Geophys. Res. Space Physics, 120(11), 9513, doi:10.1002/2015ja021440.DstAE
    281. Xu, D., H. Chen, and M. Gao (2015), Observed geomagnetic induction effect on Dst-related magnetic observations under different disturbance intensities of the magnetospheric ring current, Earth Planets Space, 67, 15, doi:10.1186/s40623-015-0189-z.Dst
    282. Yadav, S., and D. Pallamraju (2015), On the coupled interactions between ring current intensity and high-latitude ionospheric electron density variations, J. Atmos. Sol.-Terr. Phys., 125, 50, doi:10.1016/j.jastp.2015.02.006.DstAESYM-H
    283. Yakymenko, K. N., A. V. Koustov, and N. Nishitani (2015), Statistical study of midlatitude E region echoes observed by the Hokkaido SuperDARN HF radar, J. Geophys. Res. Space Physics, 120(11), 9959, doi:10.1002/2015ja021685.Dst
    284. Yamauchi, M. (2015), Decreased Sun-Earth energy-coupling efficiency starting from 2006, Earth Planets Space, 67, 44, doi:10.1186/s40623-015-0211-5.DstAE
    285. Yamazaki, Y., and M. J. Kosch (2015), The equatorial electrojet during geomagnetic storms and substorms, J. Geophys. Res. Space Physics, 120(3), 2276, doi:10.1002/2014ja020773.DstAE
    286. Yamazaki, Y., M. J. Kosch, and E. K. Sutton (2015), North-south asymmetry of the high-latitude thermospheric density: IMF BY effect, Geophys. Res. Lett., 42(2), 225, doi:10.1002/2014gl062748.AE
    287. Yang, J., F. R. Toffoletto, R. A. Wolf, and S. Sazykin (2015), On the contribution of plasma sheet bubbles to the storm time ring current, J. Geophys. Res. Space Physics, 120(9), 7416, doi:10.1002/2015ja021398.DstSYM-H
    288. Yang, S., H. Fang, L. Weng, J. Luo, and X. Zhou (2015), A case study on effect of the magnetic storm of 20 November 2003 on GPS ionospheric scintillation at Vanimo station, Adv. Space Res., 56(9), 1992, doi:10.1016/j.asr.2015.02.020.DstAESYM-H
    289. Yao, Y., Y. Ebihara, and T. Tanaka (2015), Formation and evolution of high-plasma-pressure region in the near-Earth plasma sheet: Precursor and postcursor of substorm expansion onset, J. Geophys. Res. Space Physics, 120(8), 6427, doi:10.1002/2015ja021187.DstAE
    290. Yao, Y., Y. Ebihara, and T. Tanaka (2015), Sudden pressure enhancement and tailward retreat in the near-Earth plasma sheet: THEMIS observation and MHD simulation, J. Geophys. Res. Space Physics, 120(1), 201, doi:10.1002/2014ja020482.AE
    291. Yenen, S. D., T. L. Gulyaeva, F. Arikan, and O. Arikan (2015), Association of ionospheric storms and substorms of Global Electron Content with proxy AE index, Adv. Space Res., 56(7), 1343, doi:10.1016/j.asr.2015.06.025.DstAE
    292. Yu, J., L. Y. Li, J. B. Cao, Z. G. Yuan, G. D. Reeves, D. N. Baker, J. B. Blake, and H. Spence (2015), Multiple loss processes of relativistic electrons outside the heart of outer radiation belt during a storm sudden commencement, J. Geophys. Res. Space Physics, 120(12), 10,275, doi:10.1002/2015ja021460.DstSYM-H
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    294. Yu, Y., V. Jordanova, S. Zou, R. Heelis, M. Ruohoniemi, and J. Wygant (2015), Modeling subauroral polarization streams during the 17 March 2013 storm, J. Geophys. Res. Space Physics, 120(3), 1738, doi:10.1002/2014ja020371.SYM-H
    295. Yuan, T., Y. Zhang, X. Cai, C.-Y. She, and L. J. Paxton (2015), Impacts of CME-induced geomagnetic storms on the midlatitude mesosphere and lower thermosphere observed by a sodium lidar and TIMED/GUVI, Geophys. Res. Lett., 42(18), 7295, doi:10.1002/2015gl064860.DstAE
    296. Yue, C., C.-P. Wang, L. Lyons, Y. Wang, T.-S. Hsu, M. Henderson, V. Angelopoulos, A. T. Y. Lui, and T. Nagai (2015), A 2-D empirical plasma sheet pressure model for substorm growth phase using the Support Vector Regression Machine, J. Geophys. Res. Space Physics, 120(3), 1957, doi:10.1002/2014ja020787.AE
    297. Zakharenkova, I., and E. Astafyeva (2015), Topside ionospheric irregularities as seen from multisatellite observations, J. Geophys. Res. Space Physics, 120(1), 807, doi:10.1002/2014ja020330.DstAESYM-HSYM-D
    298. Zakharenkova, I., E. Astafyeva, and I. Cherniak (2015), Early morning irregularities detected with spaceborne GPS measurements in the topside ionosphere: A multisatellite case study, J. Geophys. Res. Space Physics, 120(10), 8817, doi:10.1002/2015ja021447.AESYM-H
    299. Zhang, J. J., C. Wang, T. R. Sun, C. M. Liu, and K. R. Wang (2015), GIC due to storm sudden commencement in low-latitude high-voltage power network in China: Observation and simulation, Space Weather, 13(10), 643, doi:10.1002/2015sw001263.AESYM-H
    300. Zhang, L. Q., A. T. Y. Lui, W. Baumjohann, and J. Y. Wang (2015), Probabilities of magnetic reconnection encounter at different activity levels in the Earth's magnetotail, Adv. Space Res., 56(4), 736, doi:10.1016/j.asr.2015.05.001.AE
    301. Zhang, L. Q., J. Y. Wang, W. Baumjohann, H. Rème, and M. W. Dunlop (2015), Earthward and tailward flows in the plasma sheet, J. Geophys. Res. Space Physics, 120(6), 4487, doi:10.1002/2015ja021154.AE
    302. Zhang, L. Q., J. Y. Wang, W. Baumjohann, H. Rème, L. Dai, M. W. Dunlop, T. Chen, and Y. Huang (2015), X lines in the magnetotail for southward and northward IMF conditions, J. Geophys. Res. Space Physics, 120(9), 7764, doi:10.1002/2015ja021503.AE
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    308. Zhao, H., et al. (2015), The evolution of ring current ion energy density and energy content during geomagnetic storms based on Van Allen Probes measurements, J. Geophys. Res. Space Physics, 120(9), 7493, doi:10.1002/2015ja021533.Dst
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    2014 282 papers↑ top

    1. Abdu, M. A., J. R. de Souza, I. S. Batista, A. M. Santos, J. H. A. Sobral, R. G. Rastogi, and H. Chandra (2014), The role of electric fields in sporadic E layer formation over low latitudes under quiet and magnetic storm conditions, J. Atmos. Sol.-Terr. Phys., 115, 95, doi:10.1016/j.jastp.2013.12.003.DstAE
    2. Adebiyi, S. J., I. A. Adimula, and O. A. Oladipo (2014), Seasonal variations of GPS derived TEC at three different latitudes of the southern hemisphere during geomagnetic storms, Adv. Space Res., 53(8), 1246, doi:10.1016/j.asr.2014.01.028.DstAE
    3. Adeniyi, J. O., P. H. Doherty, O. A. Oladipo, and O. Bolaji (2014), Magnetic storm effects on the variation of TEC over Ilorin an equatorial station, Radio Sci., 49(12), 1245, doi:10.1002/2014rs005404.DstAE
    4. Ahluwalia, H. S., M. V. Alania, A. Wawrzynczak, R. C. Ygbuhay, and M. M. Fikani (2014), May 2005 Halo CMEs and Galactic Cosmic Ray Flux Changes at Earth's Orbit, Sol. Phys., 289(5), 1763, doi:10.1007/s11207-013-0439-9.Dst
    5. Arora, K., N. P. Chandrasekhar, N. Nagarajan, and A. Singh (2014), Correlations between sunspot numbers, interplanetary parameters and geomagnetic trends over solar cycles 21-23, J. Atmos. Sol.-Terr. Phys., 114, 19, doi:10.1016/j.jastp.2014.04.001.Dst
    6. Arunpold, S., N. K. Tripathi, V. Rajesh Chowdhary, and D. K. Raju (2014), Comparison of GPS-TEC measurements with IRI-2007 and IRI-2012 modeled TEC at an equatorial latitude station, Bangkok, Thailand, J. Atmos. Sol.-Terr. Phys., 117, 88, doi:10.1016/j.jastp.2014.06.001.Dst
    7. Aschwanden, M. J. (2014), A Macroscopic Description of a Generalized Self-organized Criticality System: Astrophysical Applications, Astrophys. J., 782(1), 54, doi:10.1088/0004-637x/782/1/54.AE
    8. Asikainen, T., and K. Mursula (2014), Long-term evolution of corrected NOAA/MEPED energetic proton fluxes and their relation to geomagnetic indices, J. Atmos. Sol.-Terr. Phys., 113, 29, doi:10.1016/j.jastp.2014.03.005.DstAE
    9. Astafyeva, E., Y. Yasyukevich, A. Maksikov, and I. Zhivetiev (2014), Geomagnetic storms, super-storms, and their impacts on GPS-based navigation systems, Space Weather, 12(7), 508, doi:10.1002/2014sw001072.DstSYM-H
    10. Bag, T., M. V. Sunil Krishna, S. Gahlot, and V. Singh (2014), Effect of severe geomagnetic storm conditions on atomic oxygen greenline dayglow emission in mesosphere, Adv. Space Res., 53(8), 1255, doi:10.1016/j.asr.2014.01.031.Dst
    11. Bagiya, M. S., et al. (2014), Effects of prolonged southward interplanetary magnetic field on low-latitude ionospheric electron density, J. Geophys. Res. Space Physics, 119(7), 5764, doi:10.1002/2014ja020156.SYM-HSYM-D
    12. Baker, D. N., et al. (2014), Gradual diffusion and punctuated phase space density enhancements of highly relativistic electrons: Van Allen Probes observations, Geophys. Res. Lett., 41(5), 1351, doi:10.1002/2013gl058942.Dst
    13. Bala, R., and P. Reiff (2014), Validating the Rice neural network and the Wing Kp real-time models, Space Weather, 12(6), 417, doi:10.1002/2014sw001075.DstAE
    14. Balan, N., R. Skoug, S. Tulasi Ram, P. K. Rajesh, K. Shiokawa, Y. Otsuka, I. S. Batista, Y. Ebihara, and T. Nakamura (2014), CME front and severe space weather, J. Geophys. Res. Space Physics, 119(12), 10,041, doi:10.1002/2014ja020151.Dst
    15. Belov, A., et al. (2014), Coronal Mass Ejections and Non-recurrent Forbush Decreases, Sol. Phys., 289(10), 3949, doi:10.1007/s11207-014-0534-6.Dst
    16. Berube, D., J. Sanny, R. Taus, and A. Garoutte (2014), Dayside distribution of Pc5 wave power in the quiet magnetosphere and its response to the solar wind, Planet. Space Sci., 97, 1, doi:10.1016/j.pss.2014.04.012.Dst
    17. Biktash, L. Z. (2014), Evolution of Dst index, cosmic rays and global temperature during solar cycles 20-23, Adv. Space Res., 54(12), 2525, doi:10.1016/j.asr.2014.08.016.Dst
    18. Blanter, E. M., J.-L. Le Mouël, M. G. Shnirman, and V. Courtillot (2014), Kuramoto Model of Nonlinear Coupled Oscillators as a Way for Understanding Phase Synchronization: Application to Solar and Geomagnetic Indices, Sol. Phys., 289(11), 4309, doi:10.1007/s11207-014-0568-9.Dst
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    208. Rodríguez-Martínez, M., H. R. Pérez-Enríquez, A. Carrillo-Vargas, R. López-Montes, E. A. Araujo-Pradere, G. A. Casillas-Pérez, and J. A. L. Cruz-Abeyro (2014), Ionospheric Disturbances and Their Impact on IPS Using MEXART Observations, Sol. Phys., 289(7), 2677, doi:10.1007/s11207-014-0496-8.Dst
    209. Rong, Z. J., W. X. Wan, C. Shen, A. A. Petrukovich, W. Baumjohann, M. W. Dunlop, and Y. C. Zhang (2014), Radial distribution of magnetic field in earth magnetotail current sheet, Planet. Space Sci., 103, 273, doi:10.1016/j.pss.2014.07.014.AE
    210. Ruiz, M. E., S. Dasso, W. H. Matthaeus, and J. M. Weygand (2014), Characterization of the Turbulent Magnetic Integral Length in the Solar Wind: From 0.3 to 5 Astronomical Units, Sol. Phys., 289(10), 3917, doi:10.1007/s11207-014-0531-9.Dst
    211. Ryu, K., J.-S. Chae, E. Lee, and M. Parrot (2014), Fluctuations in the ionosphere related to Honshu Twin Large Earthquakes of September 2004 observed by the DEMETER and CHAMP satellites, J. Atmos. Sol.-Terr. Phys., 121, 110, doi:10.1016/j.jastp.2014.10.003.Dst
    212. Ryu, K., M. Parrot, S. G. Kim, K. S. Jeong, J. S. Chae, S. Pulinets, and K.-I. Oyama (2014), Suspected seismo-ionospheric coupling observed by satellite measurements and GPS TEC related to the M7.9 Wenchuan earthquake of 12 May 2008, J. Geophys. Res. Space Physics, 119(12), 10,305, doi:10.1002/2014ja020613.AE
    213. Samsonov, A. A., D. G. Sibeck, B. M. Walsh, and N. V. Zolotova (2014), Sudden impulse observations in the dayside magnetosphere by THEMIS, J. Geophys. Res. Space Physics, 119(12), 9476, doi:10.1002/2014ja020012.SYM-HSYM-D
    214. Sarris, T. E. (2014), Estimates of the power per mode number of broadband ULF waves at geosynchronous orbit, J. Geophys. Res. Space Physics, 119(7), 5539, doi:10.1002/2013ja019238.Dst
    215. Schiller, Q., X. Li, L. Blum, W. Tu, D. L. Turner, and J. B. Blake (2014), A nonstorm time enhancement of relativistic electrons in the outer radiation belt, Geophys. Res. Lett., 41(1), 7, doi:10.1002/2013gl058485.DstAE
    216. Sergeev, V. A., D. A. Sormakov, and V. Angelopoulos (2014), A missing variable in solar wind-magnetosphere-ionosphere coupling studies, Geophys. Res. Lett., 41(23), 8215, doi:10.1002/2014gl062271.AE
    217. Sergeev, V. A., et al. (2014), Event study combining magnetospheric and ionospheric perspectives of the substorm current wedge modeling, J. Geophys. Res. Space Physics, 119(12), 9714, doi:10.1002/2014ja020522.SYM-H
    218. Shen, C., et al. (2014), Direct calculation of the ring current distribution and magnetic structure seen by Cluster during geomagnetic storms, J. Geophys. Res. Space Physics, 119(4), 2458, doi:10.1002/2013ja019460.DstSYM-H
    219. Shi, R., Z.-J. Hu, B. Ni, D. Han, X.-C. Chen, C. Zhou, and X. Gu (2014), Modulation of the dayside diffuse auroral intensity by the solar wind dynamic pressure, J. Geophys. Res. Space Physics, 119(12), 10,092, doi:10.1002/2014ja020180.SYM-H
    220. Shimeis, A., C. Amory-Mazaudier, R. Fleury, A. M. Mahrous, and A. F. Hassan (2014), Transient variations of vertical total electron content over some African stations from 2002 to 2012, Adv. Space Res., 54(11), 2159, doi:10.1016/j.asr.2014.07.038.Dst
    221. Shiokawa, K., et al. (2014), Ground-based ELF/VLF chorus observations at subauroral latitudes—VLF-CHAIN Campaign, J. Geophys. Res. Space Physics, 119(9), 7363, doi:10.1002/2014ja020161.AE
    222. Shukhtina, M. A., N. P. Dmitrieva, and V. A. Sergeev (2014), On the conditions preceding sudden magnetotail magnetic flux unloading, Geophys. Res. Lett., 41(4), 1093, doi:10.1002/2014gl059290.AE
    223. Simms, L. E., V. Pilipenko, M. J. Engebretson, G. D. Reeves, A. J. Smith, and M. Clilverd (2014), Prediction of relativistic electron flux at geostationary orbit following storms: Multiple regression analysis, J. Geophys. Res. Space Physics, 119(9), 7297, doi:10.1002/2014ja019955.DstAESYM-H
    224. Simon Wedlund, M., M. A. Clilverd, C. J. Rodger, K. Cresswell-Moorcock, N. Cobbett, P. Breen, D. Danskin, E. Spanswick, and J. V. Rodriguez (2014), A statistical approach to determining energetic outer radiation belt electron precipitation fluxes, J. Geophys. Res. Space Physics, 119(5), 3961, doi:10.1002/2013ja019715.Dst
    225. Spasojevic, M. (2014), Statistical analysis of ground-based chorus observations during geomagnetic storms, J. Geophys. Res. Space Physics, 119(10), 8299, doi:10.1002/2014ja019975.Dst
    226. Su, Y.-J., J. M. Quinn, W. R. Johnston, J. P. McCollough, and M. J. Starks (2014), Specification of > 2 MeV electron flux as a function of local time and geomagnetic activity at geosynchronous orbit, Space Weather, 12(7), 470, doi:10.1002/2014sw001069.AE
    227. Su, Z., et al. (2014), Nonstorm time dynamics of electron radiation belts observed by the Van Allen Probes, Geophys. Res. Lett., 41(2), 229, doi:10.1002/2013gl058912.AE
    228. Su, Z., et al. (2014), Quantifying the relative contributions of substorm injections and chorus waves to the rapid outward extension of electron radiation belt, J. Geophys. Res. Space Physics, 119(12), 10,023, doi:10.1002/2014ja020709.SYM-H
    229. Summers, D., Y. Omura, S. Nakamura, and C. A. Kletzing (2014), Fine structure of plasmaspheric hiss, J. Geophys. Res. Space Physics, 119(11), 9134, doi:10.1002/2014ja020437.AESYM-H
    230. Suvorova, A. V., C.-M. Huang, H. Matsumoto, A. V. Dmitriev, V. E. Kunitsyn, E. S. Andreeva, I. A. Nesterov, and L.-C. Tsai (2014), Low-latitude ionospheric effects of energetic electrons during a recurrent magnetic storm, J. Geophys. Res. Space Physics, 119(11), 9283, doi:10.1002/2014ja020349.DstAESYM-H
    231. Teh, W.-L., R. Nakamura, H. Karimabadi, W. Baumjohann, and T. L. Zhang (2014), Correlation of core field polarity of magnetotail flux ropes with the IMF By: Reconnection guide field dependency, J. Geophys. Res. Space Physics, 119(4), 2933, doi:10.1002/2013ja019454.AE
    232. Teramoto, M., N. Nishitani, V. Pilipenko, T. Ogawa, K. Shiokawa, T. Nagatsuma, A. Yoshikawa, D. Baishev, and K. T. Murata (2014), Pi2 pulsation simultaneously observed in the E and F region ionosphere with the SuperDARN Hokkaido radar, J. Geophys. Res. Space Physics, 119(5), 3444, doi:10.1002/2012ja018585.AE
    233. Todorović, N., and D. Vujović (2014), Effect of solar activity on the repetitiveness of some meteorological phenomena, Adv. Space Res., 54(11), 2430, doi:10.1016/j.asr.2014.08.007.Dst
    234. Troshichev, O. A., N. A. Podorozhkina, D. A. Sormakov, and A. S. Janzhura (2014), PC index as a proxy of the solar wind energy that entered into the magnetosphere: Development of magnetic substorms, J. Geophys. Res. Space Physics, 119(8), 6521, doi:10.1002/2014ja019940.DstAE
    235. Tsurutani, B. T., and G. S. Lakhina (2014), An extreme coronal mass ejection and consequences for the magnetosphere and Earth, Geophys. Res. Lett., 41(2), 287, doi:10.1002/2013gl058825.Dst
    236. Tsurutani, B. T., B. J. Falkowski, J. S. Pickett, O. P. Verkhoglyadova, O. Santolik, and G. S. Lakhina (2014), Extremely intense ELF magnetosonic waves: A survey of polar observations, J. Geophys. Res. Space Physics, 119(2), 964, doi:10.1002/2013ja019284.AESYM-H
    237. Tsurutani, B. T., E. Echer, K. Shibata, O. P. Verkhoglyadova, A. J. Mannucci, W. D. Gonzalez, J. U. Kozyra, and M. Pätzold (2014), The interplanetary causes of geomagnetic activity during the 7-17 March 2012 interval: a CAWSES II overview, J. Space Weather Space Clim., 4, A02, doi:10.1051/swsc/2013056.SYM-H
    238. Tsyganenko, N. A. (2014), Data-based modeling of the geomagnetosphere with an IMF-dependent magnetopause, J. Geophys. Res. Space Physics, 119(1), 335, doi:10.1002/2013ja019346.DstSYM-H
    239. Tsyganenko, N. A., and V. A. Andreeva (2014), On the "bowl-shaped" deformation of planetary equatorial current sheets, Geophys. Res. Lett., 41(4), 1079, doi:10.1002/2014gl059295.SYM-H
    240. Tu, W., G. S. Cunningham, Y. Chen, S. K. Morley, G. D. Reeves, J. B. Blake, D. N. Baker, and H. Spence (2014), Event-specific chorus wave and electron seed population models in DREAM3D using the Van Allen Probes, Geophys. Res. Lett., 41(5), 1359, doi:10.1002/2013gl058819.DstAE
    241. Turner, D. L., et al. (2014), Competing source and loss mechanisms due to wave-particle interactions in Earth's outer radiation belt during the 30 September to 3 October 2012 geomagnetic storm, J. Geophys. Res. Space Physics, 119(3), 1960, doi:10.1002/2014ja019770.DstAE
    242. Upadhayaya, A. K., and S. Gupta (2014), A statistical analysis of occurrence characteristics of Spread-F irregularities over Indian region, J. Atmos. Sol.-Terr. Phys., 112, 1, doi:10.1016/j.jastp.2014.01.019.Dst
    243. Uralov, A. M., V. V. Grechnev, G. V. Rudenko, I. I. Myshyakov, I. M. Chertok, B. P. Filippov, and V. A. Slemzin (2014), A Challenging Solar Eruptive Event of 18 November 2003 and the Causes of the 20 November Geomagnetic Superstorm. III. Catastrophe of the Eruptive Filament at a Magnetic Null Point and Formation of an Opposite-Handedness CME, Sol. Phys., 289(10), 3747, doi:10.1007/s11207-014-0536-4.Dst
    244. Usanova, M. E., et al. (2014), Effect of EMIC waves on relativistic and ultrarelativistic electron populations: Ground-based and Van Allen Probes observations, Geophys. Res. Lett., 41(5), 1375, doi:10.1002/2013gl059024.Dst
    245. Valek, P. W., J. Goldstein, D. J. McComas, M.-C. Fok, and D. G. Mitchell (2014), Large magnetic storms as viewed by TWINS: A study of the differences in the medium energy ENA composition, J. Geophys. Res. Space Physics, 119(4), 2819, doi:10.1002/2014ja019782.DstSYM-H
    246. van der Meeren, C., K. Oksavik, D. Lorentzen, J. I. Moen, and V. Romano (2014), GPS scintillation and irregularities at the front of an ionization tongue in the nightside polar ionosphere, J. Geophys. Res. Space Physics, 119(10), 8624, doi:10.1002/2014ja020114.AE
    247. Verkhoglyadova, O. P., B. T. Tsurutani, A. J. Mannucci, M. G. Mlynczak, L. A. Hunt, and L. J. Paxton (2014), Ionospheric TEC, thermospheric cooling and Σ[O/N2] compositional changes during the 6-17 March 2012 magnetic storm interval (CAWSES II), J. Atmos. Sol.-Terr. Phys., 115, 41, doi:10.1016/j.jastp.2013.11.009.DstAESYM-HSYM-D
    248. Vichare, G., R. Rawat, A. Bhaskar, and B. M. Pathan (2014), Ionospheric current contribution to the main impulse of a negative sudden impulse, Earth Planets Space, 66, 92, doi:10.1186/1880-5981-66-92.SYM-H
    249. Vörös, Z., G. Facskó, M. Khodachenko, I. Honkonen, P. Janhunen, and M. Palmroth (2014), Windsock memory COnditioned RAM (CO-RAM) pressure effect: Forced reconnection in the Earth's magnetotail, J. Geophys. Res. Space Physics, 119(8), 6273, doi:10.1002/2014ja019857.AE
    250. Walsh, A. P., et al. (2014), Dawn-dusk asymmetries in the coupled solar wind-magnetosphere-ionosphere system: a review, Ann. Geophys., 32(7), 705, doi:10.5194/angeo-32-705-2014.Dst
    251. Wang, C., J. P. Han, H. Li, Z. Peng, and J. D. Richardson (2014), Solar wind-magnetosphere energy coupling function fitting: Results from a global MHD simulation, J. Geophys. Res. Space Physics, 119(8), 6199, doi:10.1002/2014ja019834.DstAESYM-H
    252. Wang, C.-P., M. Gkioulidou, L. R. Lyons, X. Xing, and R. A. Wolf (2014), Interchange motion as a transport mechanism for formation of cold-dense plasma sheet, J. Geophys. Res. Space Physics, 119(10), 8318, doi:10.1002/2014ja020251.Dst
    253. Wang, G. Q., M. Volwerk, R. Nakamura, P. Boakes, T. L. Zhang, A. Yoshikawa, and D. G. Baishev (2014), Flapping current sheet with superposed waves seen in space and on the ground, J. Geophys. Res. Space Physics, 119(12), 10,078, doi:10.1002/2014ja020526.AE
    254. Wang, H., H. Lühr, J.-H. Shue, H. U. Frey, G. Kervalishvili, T. Huang, X. Cao, G. Pi, and A. J. Ridley (2014), Strong ionospheric field-aligned currents for radial interplanetary magnetic fields, J. Geophys. Res. Space Physics, 119(5), 3979, doi:10.1002/2014ja019951.DstAE
    255. Wang, K., C.-H. Lin, L.-Y. Wang, T. Hada, Y. Nishimura, D. L. Turner, and V. Angelopoulos (2014), Pitch angle distributions of electrons at dipolarization sites during geomagnetic activity: THEMIS observations, J. Geophys. Res. Space Physics, 119(12), 9747, doi:10.1002/2014ja020176.AE
    256. Wang, Y.-M., and R. Colaninno (2014), Is Solar Cycle 24 Producing More Coronal Mass Ejections Than Cycle 23?, Astrophys. J. Lett., 784(2), L27, doi:10.1088/2041-8205/784/2/l27.Dst
    257. Wang, Z., Z. Yuan, M. Li, H. Li, D. Wang, H. Li, S. Huang, and Z. Qiao (2014), Statistical characteristics of EMIC wave-driven relativistic electron precipitation with observations of POES satellites: Revisit, J. Geophys. Res. Space Physics, 119(7), 5509, doi:10.1002/2014ja020082.Dst
    258. Weygand, J. M., E. Zesta, and O. Troshichev (2014), Auroral electrojet indices in the Northern and Southern Hemispheres: A statistical comparison, J. Geophys. Res. Space Physics, 119(6), 4819, doi:10.1002/2013ja019377.AE
    259. Whittaker, I. C., M. A. Clilverd, and C. J. Rodger (2014), Characteristics of precipitating energetic electron fluxes relative to the plasmapause during geomagnetic storms, J. Geophys. Res. Space Physics, 119(11), 8784, doi:10.1002/2014ja020446.Dst
    260. Wing, S., S. Ohtani, J. Johnson, G. R. Wilson, and T. Higuchi (2014), Field-aligned currents during the extreme solar minimum between the solar cycles 23 and 24, J. Geophys. Res. Space Physics, 119(4), 2466, doi:10.1002/2013ja019452.Dst
    261. Yamauchi, M., I. Dandouras, H. Rème, and H. Nilsson (2014), Cluster observations of hot He+ events in the inner magnetosphere, J. Geophys. Res. Space Physics, 119(4), 2706, doi:10.1002/2013ja019724.DstAE
    262. Yamazaki, Y. (2014), Solar and lunar ionospheric electrodynamic effects during stratospheric sudden warmings, J. Atmos. Sol.-Terr. Phys., 119, 138, doi:10.1016/j.jastp.2014.08.001.Dst
    263. Yang, J., F. Toffoletto, G. Lu, and M. Wiltberger (2014), RCM-E and AMIE studies of the Harang reversal formation during a steady magnetospheric convection event, J. Geophys. Res. Space Physics, 119(9), 7228, doi:10.1002/2014ja020207.AE
    264. Yang, X. C., G. W. Zhu, X. X. Zhang, Y. Q. Sun, J. B. Liang, and X. H. Wei (2014), An unusual long-lived relativistic electron enhancement event excited by sequential CMEs, J. Geophys. Res. Space Physics, 119(11), 9038, doi:10.1002/2014ja019797.DstAE
    265. Yang, Y. Y., et al. (2014), The force-free configuration of flux ropes in geomagnetotail: Cluster observations, J. Geophys. Res. Space Physics, 119(8), 6327, doi:10.1002/2013ja019642.AE
    266. Yermolaev, Y. I., I. G. Lodkina, N. S. Nikolaeva, and M. Y. Yermolaev (2014), Influence of the interplanetary driver type on the durations of the main and recovery phases of magnetic storms, J. Geophys. Res. Space Physics, 119(10), 8126, doi:10.1002/2014ja019826.Dst
    267. Yin, P., and C. N. Mitchell (2014), Improving the vertical electron density profile in ionospheric imaging at storm time: A case study on 25-27 September 2011, J. Geophys. Res. Space Physics, 119(9), 7963, doi:10.1002/2014ja019899.Dst
    268. Yoon, M., and J. Lee (2014), Medium-scale traveling ionospheric disturbances in the Korean region on 10 November 2004: Potential impact on GPS-based navigation systems, Space Weather, 12(4), 173, doi:10.1002/2013sw001002.DstAE
    269. Yu, Y., et al. (2014), Application and testing of the L* neural network with the self-consistent magnetic field model of RAM-SCB, J. Geophys. Res. Space Physics, 119(3), 1683, doi:10.1002/2013ja019350.Dst
    270. Yu, Y., V. Jordanova, D. Welling, B. Larsen, S. G. Claudepierre, and C. Kletzing (2014), The role of ring current particle injections: Global simulations and Van Allen Probes observations during 17 March 2013 storm, Geophys. Res. Lett., 41(4), 1126, doi:10.1002/2014gl059322.DstAESYM-H
    271. Yu, Z.-G., V. Anh, and R. Eastes (2014), Underlying scaling relationships between solar activity and geomagnetic activity revealed by multifractal analyses, J. Geophys. Res. Space Physics, 119(9), 7577, doi:10.1002/2014ja019893.AE
    272. Zhang, X., V. Angelopoulos, B. Ni, R. M. Thorne, and R. B. Horne (2014), Extent of ECH wave emissions in the Earth's magnetotail, J. Geophys. Res. Space Physics, 119(7), 5561, doi:10.1002/2014ja019931.AE
    273. Zhang, X.-Y., and M. B. Moldwin (2014), The source, statistical properties, and geoeffectiveness of long-duration southward interplanetary magnetic field intervals, J. Geophys. Res. Space Physics, 119(2), 658, doi:10.1002/2013ja018937.DstAESYM-H
    274. Zhang, X.-Y., M. B. Moldwin, J. T. Steinberg, and R. M. Skoug (2014), Alfvén waves as a possible source of long-duration, large-amplitude, and geoeffective southward IMF, J. Geophys. Res. Space Physics, 119(5), 3259, doi:10.1002/2013ja019623.SYM-H
    275. Zhang, Y., L. J. Paxton, D. Morrison, D. Marsh, and H. Kil (2014), Storm-time behaviors of O/N2 and NO variations, J. Atmos. Sol.-Terr. Phys., 114, 42, doi:10.1016/j.jastp.2014.04.003.Dst
    276. Zhao, H., X. Li, J. B. Blake, J. F. Fennell, S. G. Claudepierre, D. N. Baker, A. N. Jaynes, and D. M. Malaspina (2014), Characteristics of pitch angle distributions of hundreds of keV electrons in the slot region and inner radiation belt, J. Geophys. Res. Space Physics, 119(12), 9543, doi:10.1002/2014ja020386.AE
    277. Zhao, H., X. Li, J. B. Blake, J. F. Fennell, S. G. Claudepierre, D. N. Baker, A. N. Jaynes, D. M. Malaspina, and S. G. Kanekal (2014), Peculiar pitch angle distribution of relativistic electrons in the inner radiation belt and slot region, Geophys. Res. Lett., 41(7), 2250, doi:10.1002/2014gl059725.DstAE
    278. Zhima, Z., J. Cao, W. Liu, H. Fu, T. Wang, X. Zhang, and X. Shen (2014), Storm time evolution of ELF/VLF waves observed by DEMETER satellite, J. Geophys. Res. Space Physics, 119(4), 2612, doi:10.1002/2013ja019237.DstAE
    279. Zhou, M., B. Ni, S. Huang, X. Deng, M. Ashour-Abdalla, Y. Nishimura, Z. Yuan, Y. Pang, and H. Li (2014), Observation of large-amplitude magnetosonic waves at dipolarization fronts, J. Geophys. Res. Space Physics, 119(6), 4335, doi:10.1002/2014ja019796.AE
    280. Zolotukhina, N., N. Polekh, E. Romanova, and A. Polyakova (2014), Stability of the seasonal variations in diurnal and semidiurnal components of mid-latitude F2 layer parameters, Adv. Space Res., 54(3), 342, doi:10.1016/j.asr.2013.11.026.AE
    281. Zou, S., M. B. Moldwin, A. J. Ridley, M. J. Nicolls, A. J. Coster, E. G. Thomas, and J. M. Ruohoniemi (2014), On the generation/decay of the storm-enhanced density plumes: Role of the convection flow and field-aligned ion flow, J. Geophys. Res. Space Physics, 119(10), 8543, doi:10.1002/2014ja020408.DstSYM-H
    282. Zou, Y., and N. Nishitani (2014), Study of mid-latitude ionospheric convection during quiet and disturbed periods using the SuperDARN Hokkaido radar, Adv. Space Res., 54(3), 473, doi:10.1016/j.asr.2014.01.011.DstAE

    2013 290 papers↑ top

    1. Abdu, M. A., J. R. Souza, I. S. Batista, B. G. Fejer, and J. H. A. Sobral (2013), Sporadic E layer development and disruption at low latitudes by prompt penetration electric fields during magnetic storms, J. Geophys. Res. Space Physics, 118(5), 2639, doi:10.1002/jgra.50271.AE
    2. Adebesin, B. O., S. O. Ikubanni, S. J. Adebiyi, and B. W. Joshua (2013), Multi-station observation of ionospheric disturbance of March 9 2012 and comparison with IRI-model, Adv. Space Res., 52(4), 604, doi:10.1016/j.asr.2013.05.002.Dst
    3. Aggarwal, M., H. P. Joshi, K. N. Iyer, and Y. S. Kwak (2013), Response of the EIA ionosphere to the 7-8 May 2005 geomagnetic storm, Adv. Space Res., 52(4), 591, doi:10.1016/j.asr.2013.04.017.DstAE
    4. Aikio, A. T., T. Pitkänen, I. Honkonen, M. Palmroth, and O. Amm (2013), IMF effect on the polar cap contraction and expansion during a period of substorms, Ann. Geophys., 31(6), 1021, doi:10.5194/angeo-31-1021-2013.AESYM-H
    5. Akala, A. O., A. B. Rabiu, E. O. Somoye, E. O. Oyeyemi, and A. B. Adeloye (2013), The response of African equatorial GPS-TEC to intense geomagnetic storms during the ascending phase of solar cycle 24, J. Atmos. Sol.-Terr. Phys., 98, 50, doi:10.1016/j.jastp.2013.02.006.Dst
    6. Akasofu, S.-I. (2013), Where is the magnetic energy for the expansion phase of auroral substorms accumulated?, J. Geophys. Res. Space Physics, 118(11), 7219, doi:10.1002/2013ja019042.AE
    7. Akhoondzadeh, M. (2013), Support vector machines for TEC seismo-ionospheric anomalies detection, Ann. Geophys., 31(2), 173, doi:10.5194/angeo-31-173-2013.Dst
    8. Alania, M. V., A. Wawrzynczak, V. E. Sdobnov, and M. V. Kravtsova (2013), Temporal Changes in the Rigidity Spectrum of Forbush Decreases Based on Neutron Monitor Data, Sol. Phys., 286(2), 561, doi:10.1007/s11207-013-0273-0.Dst
    9. Alfonsi, L., L. Spogli, M. Pezzopane, V. Romano, E. Zuccheretti, G. de Franceschi, M. A. Cabrera, and R. G. Ezquer (2013), Comparative analysis of spread-F signature and GPS scintillation occurrences at Tucumán, Argentina, J. Geophys. Res. Space Physics, 118(7), 4483, doi:10.1002/jgra.50378.DstAE
    10. Allen, R. C., J.-C. Zhang, L. M. Kistler, H. E. Spence, R.-L. Lin, M. W. Dunlop, and M. André (2013), Multiple bidirectional EMIC waves observed by Cluster at middle magnetic latitudes in the dayside magnetosphere, J. Geophys. Res. Space Physics, 118(10), 6266, doi:10.1002/jgra.50600.Dst
    11. Amabayo, E. B., and J. Cilliers Pierre (2013), Multi-station observation of ionospheric irregularities over South Africa during strong geomagnetic storms, Adv. Space Res., 51(5), 754, doi:10.1016/j.asr.2012.10.015.DstAE
    12. Amm, O., R. Fujii, H. VanhamäKi, A. Yoshikawa, and A. Ieda (2013), General solution for calculating polarization electric fields in the auroral ionosphere and application examples, J. Geophys. Res. Space Physics, 118(5), 2428, doi:10.1002/jgra.50254.AE
    13. Anderson, C., M. J. Kosch, M. J. Nicolls, and M. Conde (2013), Ion-neutral coupling in Earth's thermosphere, estimated from concurrent radar and optical observations above Alaska, J. Atmos. Sol.-Terr. Phys., 105, 313, doi:10.1016/j.jastp.2013.04.005.Dst
    14. Antonova, E. E., I. P. Kirpichev, V. V. Vovchenko, M. V. Stepanova, M. O. Riazantseva, M. S. Pulinets, I. L. Ovchinnikov, and S. S. Znatkova (2013), Characteristics of plasma ring, surrounding the Earth at geocentric distances ∼7-10RE, and magnetospheric current systems, J. Atmos. Sol.-Terr. Phys., 99, 85, doi:10.1016/j.jastp.2012.08.013.Dst
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    206. Reistad, J. P., N. ØStgaard, K. M. Laundal, and K. Oksavik (2013), On the non-conjugacy of nightside aurora and their generator mechanisms, J. Geophys. Res. Space Physics, 118(6), 3394, doi:10.1002/jgra.50300.AE
    207. Remanan, R., and K. Unnikrishnan (2013), Effects of SSC in geomagnetic field components H, D and Z at low-latitude stations during 1995-2001, J. Atmos. Sol.-Terr. Phys., 98, 63, doi:10.1016/j.jastp.2013.03.006.DstAE
    208. Resende, L. C. A., C. M. Denardini, and I. S. Batista (2013), Abnormal fb Es enhancements in equatorial Es layers during magnetic storms of solar cycle 23, J. Atmos. Sol.-Terr. Phys., 102, 228, doi:10.1016/j.jastp.2013.05.020.Dst
    209. Rother, M., V. Lesur, and R. Schachtschneider (2013), An algorithm for deriving core magnetic field models from the Swarm data set, Earth Planets Space, 65(11), 1223, doi:10.5047/eps.2013.07.005.Dst
    210. Russell, C. T., et al. (2013), The Very Unusual Interplanetary Coronal Mass Ejection of 2012 July 23: A Blast Wave Mediated by Solar Energetic Particles, Astrophys. J., 770(1), 38, doi:10.1088/0004-637x/770/1/38.Dst
    211. Sakai, J., S. Taguchi, K. Hosokawa, and Y. Ogawa (2013), Steep plasma depletion in dayside polar cap during a CME-driven magnetic storm, J. Geophys. Res. Space Physics, 118(1), 462, doi:10.1029/2012ja018138.DstSYM-H
    212. Santos, A. M., M. A. Abdu, J. H. A. Sobral, M. Mascarenhas, and P. A. B. Nogueira (2013), Equatorial evening prereversal vertical drift dependence on solar EUV flux and F10.7 index during quiet and disturbed periods over Brazil, J. Geophys. Res. Space Physics, 118(7), 4662, doi:10.1002/jgra.50438.DstAE
    213. Sauvaud, J.-A., M. Walt, D. Delcourt, C. Benoist, E. Penou, Y. Chen, and C. T. Russell (2013), Inner radiation belt particle acceleration and energy structuring by drift resonance with ULF waves during geomagnetic storms, J. Geophys. Res. Space Physics, 118(4), 1723, doi:10.1002/jgra.50125.Dst
    214. Schrijver, C. J., and S. D. Mitchell (2013), Disturbances in the US electric grid associated with geomagnetic activity, J. Space Weather Space Clim., 3, A19, doi:10.1051/swsc/2013041.DstAE
    215. Sezen, U., F. Arikan, O. Arikan, O. Ugurlu, and A. Sadeghimorad (2013), Online, automatic, near-real time estimation of GPS-TEC: IONOLAB-TEC, Space Weather, 11(5), 297, doi:10.1002/swe.20054.Dst
    216. Sharma, R., N. Srivastava, D. Chakrabarty, C. Möstl, and Q. Hu (2013), Interplanetary and geomagnetic consequences of 5 January 2005 CMEs associated with eruptive filaments, J. Geophys. Res. Space Physics, 118(7), 3954, doi:10.1002/jgra.50362.DstAE
    217. Shin, D.-K., and D.-Y. Lee (2013), Determining radial boundary conditions of outer radiation belt electrons using THEMIS observations, J. Geophys. Res. Space Physics, 118(6), 2888, doi:10.1002/jgra.50334.AE
    218. Shiokawa, K., Y. Miyoshi, P. C. Brandt, D. S. Evans, H. U. Frey, J. Goldstein, and K. Yumoto (2013), Ground and satellite observations of low-latitude red auroras at the initial phase of magnetic storms, J. Geophys. Res. Space Physics, 118(1), 256, doi:10.1029/2012ja018001.Dst
    219. Sieradzki, R., I. Cherniak, and A. Krankowski (2013), Near-real time monitoring of the TEC fluctuations over the northern hemisphere using GNSS permanent networks, Adv. Space Res., 52(3), 391, doi:10.1016/j.asr.2013.03.036.Dst
    220. Simi, K. G., G. Manju, M. K. M. Haridas, S. R. P. Nayar, T. K. Pant, and S. Alex (2013), Ionospheric response to a geomagnetic storm during November 8–10, 2004, Earth Planets Space, 65(4), 343, doi:10.5047/eps.2012.09.005.DstAESYM-H
    221. Singh, A. K., A. K. Sinha, B. M. Pathan, R. Rajaram, and R. Rawat (2013), Effect of prompt penetration on the low latitude ASY indices, J. Atmos. Sol.-Terr. Phys., 94, 34, doi:10.1016/j.jastp.2012.12.015.DstAESYM-HSYM-DASY-HASY-D
    222. Singh, A. K., R. Rawat, and B. M. Pathan (2013), On the UT and seasonal variations of the standard and SuperMAG auroral electrojet indices, J. Geophys. Res. Space Physics, 118(8), 5059, doi:10.1002/jgra.50488.AE
    223. Singh, A. K., S. Mishra, and R. Singh (2013), ULF wave index as magnetospheric and space-weather parameters, Adv. Space Res., 52(8), 1427, doi:10.1016/j.asr.2013.07.040.DstAE
    224. Spence, H. E., et al. (2013), Science Goals and Overview of the Radiation Belt Storm Probes (RBSP) Energetic Particle, Composition, and Thermal Plasma (ECT) Suite on NASA's Van Allen Probes Mission, Space Sci. Rev., 179(1-4), 311, doi:10.1007/s11214-013-0007-5.Dst
    225. Spencer, E., and S. Patra (2013), The effect of nonlinear ionospheric conductivity enhancement on magnetospheric substorms, Nonlinear Processes Geophys., 20(3), 429, doi:10.5194/npg-20-429-2013.AE
    226. Spencer, E., S. Patra, and T. Asikainen (2013), Magnetotail current contribution to the Dst Index Using the MT Index and the WINDMI model, Adv. Space Res., 52(11), 1974, doi:10.1016/j.asr.2013.08.016.DstAE
    227. Stephens, G. K., M. I. Sitnov, J. Kissinger, N. A. Tsyganenko, R. L. McPherron, H. Korth, and B. J. Anderson (2013), Empirical reconstruction of storm time steady magnetospheric convection events, J. Geophys. Res. Space Physics, 118(10), 6434, doi:10.1002/jgra.50592.DstAE
    228. Stolle, C., et al. (2013), Space Weather opportunities from the Swarm mission including near real time applications, Earth Planets Space, 65(11), 1375, doi:10.5047/eps.2013.10.002.DstAE
    229. Su, Y. C., J. Y. Liu, S. P. Chen, H. F. Tsai, and M. Q. Chen (2013), Temporal and spatial precursors in ionospheric total electron content of the 16 October 1999 Mw7.1 Hector Mine earthquake, J. Geophys. Res. Space Physics, 118(10), 6511, doi:10.1002/jgra.50586.Dst
    230. Sun, Y.-Y., T. Matsuo, E. A. Araujo-Pradere, and J.-Y. Liu (2013), Ground-based GPS observation of SED-associated irregularities over CONUS, J. Geophys. Res. Space Physics, 118(5), 2478, doi:10.1029/2012ja018103.DstAE
    231. Sunda, S., B. M. Vyas, and P. V. Khekale (2013), Storm time spatial variations in TEC during moderate geomagnetic storms in extremely low solar activity conditions (2007-2009) over Indian region, Adv. Space Res., 52(1), 158, doi:10.1016/j.asr.2013.03.006.Dst
    232. Suvorova, A. V., A. V. Dmitriev, L.-C. Tsai, V. E. Kunitsyn, E. S. Andreeva, I. A. Nesterov, and L. L. Lazutin (2013), TEC evidence for near-equatorial energy deposition by 30 keV electrons in the topside ionosphere, J. Geophys. Res. Space Physics, 118(7), 4672, doi:10.1002/jgra.50439.DstAESYM-H
    233. Szajko, N. S., G. Cristiani, C. H. Mandrini, and A. Dal Lago (2013), Very intense geomagnetic storms and their relation to interplanetary and solar active phenomena, Adv. Space Res., 51(10), 1842, doi:10.1016/j.asr.2012.03.006.Dst
    234. Søraas, F., and M. Sørbø (2013), Low altitude observations of ENA from the ring current and from the proton oval, J. Atmos. Sol.-Terr. Phys., 99, 104, doi:10.1016/j.jastp.2012.10.003.Dst
    235. Takahashi, K., M. D. Hartinger, V. Angelopoulos, K.-H. Glassmeier, and H. J. Singer (2013), Multispacecraft observations of fundamental poloidal waves without ground magnetic signatures, J. Geophys. Res. Space Physics, 118(7), 4319, doi:10.1002/jgra.50405.DstAESYM-HASY-H
    236. Takeda, M. (2013), Difference in seasonal and long-term variations in geomagnetic Sq fields between geomagnetic Y and Z components, J. Geophys. Res. Space Physics, 118(5), 2522, doi:10.1002/jgra.50128.Dst
    237. Tang, B. B., C. Wang, and W. Y. Li (2013), The magnetosphere under the radial interplanetary magnetic field: A numerical study, J. Geophys. Res. Space Physics, 118(12), 7674, doi:10.1002/2013ja019155.AE
    238. Tenerani, A., O. Le Contel, F. Califano, P. Robert, D. Fontaine, N. Cornilleau-Wehrlin, and J.-A. Sauvaud (2013), Cluster observations of whistler waves correlated with ion-scale magnetic structures during the 17 August 2003 substorm event, J. Geophys. Res. Space Physics, 118(10), 6072, doi:10.1002/jgra.50562.AE
    239. Tenfjord, P., and N. Østgaard (2013), Energy transfer and flow in the solar wind-magnetosphere-ionosphere system: A new coupling function, J. Geophys. Res. Space Physics, 118(9), 5659, doi:10.1002/jgra.50545.DstAESYM-H
    240. Thorne, R. M., et al. (2013), Evolution and slow decay of an unusual narrow ring of relativistic electrons near L ~ 3.2 following the September 2012 magnetic storm, Geophys. Res. Lett., 40(14), 3507, doi:10.1002/grl.50627.Dst
    241. Thébault, E., P. Vigneron, S. Maus, A. Chulliat, O. Sirol, and G. Hulot (2013), Swarm SCARF Dedicated Lithospheric Field Inversion chain, Earth Planets Space, 65(11), 1257, doi:10.5047/eps.2013.07.008.Dst
    242. Tobiska, W. K., D. Knipp, W. J. Burke, D. Bouwer, J. Bailey, D. Odstrcil, M. P. Hagan, J. Gannon, and B. R. Bowman (2013), The Anemomilos prediction methodology for Dst, Space Weather, 11(9), 490, doi:10.1002/swe.20094.Dst
    243. Tsurutani, B. T., A. J. Mannuccci, O. P. Verkhoglyadova, and G. S. Lakhina (2013), Comment on "Storming the Bastille: the effect of electric fields on the ionospheric F-layer" by Rishbeth et al. (2010), Ann. Geophys., 31(2), 145, doi:10.5194/angeo-31-145-2013.DstSYM-H
    244. Tsyganenko, N. A. (2013), Data-based modelling of the Earth's dynamic magnetosphere: a review, Ann. Geophys., 31(10), 1745, doi:10.5194/angeo-31-1745-2013.DstSYM-H
    245. Tu, W., G. S. Cunningham, Y. Chen, M. G. Henderson, E. Camporeale, and G. D. Reeves (2013), Modeling radiation belt electron dynamics during GEM challenge intervals with the DREAM3D diffusion model, J. Geophys. Res. Space Physics, 118(10), 6197, doi:10.1002/jgra.50560.Dst
    246. Turner, D. L., V. Angelopoulos, W. Li, M. D. Hartinger, M. Usanova, I. R. Mann, J. Bortnik, and Y. Shprits (2013), On the storm-time evolution of relativistic electron phase space density in Earth's outer radiation belt, J. Geophys. Res. Space Physics, 118(5), 2196, doi:10.1002/jgra.50151.DstAESYM-H
    247. Tyasto, M. I., O. A. Danilova, N. G. Ptitsyna, and V. E. Sdobnov (2013), Variations in cosmic ray cutoff rigidities during the great geomagnetic storm of November 2004, Adv. Space Res., 51(7), 1230, doi:10.1016/j.asr.2012.10.025.Dst
    248. Uwamahoro, J., and L.-A. McKinnell (2013), Solar and interplanetary precursors of geomagnetic storms in solar cycle 23, Adv. Space Res., 51(3), 395, doi:10.1016/j.asr.2012.09.034.Dst
    249. Valdivia, J. A., J. Rogan, V. Muñoz, B. A. Toledo, and M. Stepanova (2013), The magnetosphere as a complex system, Adv. Space Res., 51(10), 1934, doi:10.1016/j.asr.2012.04.004.AE
    250. Valek, P. W., J. Goldstein, D. J. McComas, R. Iiie, N. Buzulukova, M.-C. Fok, and J. D. Perez (2013), Oxygen-hydrogen differentiated observations from TWINS: The 22 July 2009 storm, J. Geophys. Res. Space Physics, 118(6), 3377, doi:10.1002/jgra.50204.DstSYM-H
    251. Vanhamäki, H., A. Viljanen, R. Pirjola, and O. Amm (2013), Deriving the geomagnetically induced electric field at the Earth's surface from the time derivative of the vertical magnetic field, Earth Planets Space, 65(9), 997, doi:10.5047/eps.2013.03.013.AE
    252. Vennerstrom, S., and T. Moretto (2013), Monitoring auroral electrojets with satellite data, Space Weather, 11(9), 509, doi:10.1002/swe.20090.DstAE
    253. Verkhoglyadova, O. P., B. T. Tsurutani, A. J. Mannucci, M. G. Mlynczak, L. A. Hunt, and T. Runge (2013), Variability of ionospheric TEC during solar and geomagnetic minima (2008 and 2009): external high speed stream drivers, Ann. Geophys., 31(2), 263, doi:10.5194/angeo-31-263-2013.DstAESYM-HASY-H
    254. Viljanen, A., and E. Tanskanen (2013), High-latitude magnetic fields and their time derivatives: interhemispheric similarities, Earth Planets Space, 65(1), 45, doi:10.5047/eps.2012.05.014.AE
    255. Vorobjev, V. G., O. I. Yagodkina, and Y. V. Katkalov (2013), Auroral Precipitation Model and its applications to ionospheric and magnetospheric studies, J. Atmos. Sol.-Terr. Phys., 102, 157, doi:10.1016/j.jastp.2013.05.007.DstAE
    256. Walker, S. N., V. Kadirkamanathan, and O. A. Pokhotelov (2013), Changes in the ultra-low frequency wave field during the precursor phase to the Sichuan earthquake: DEMETER observations, Ann. Geophys., 31(9), 1597, doi:10.5194/angeo-31-1597-2013.Dst
    257. Wang, C.-P., S. G. Zaharia, L. R. Lyons, and V. Angelopoulos (2013), Spatial distributions of ion pitch angle anisotropy in the near-Earth magnetosphere and tail plasma sheet, J. Geophys. Res. Space Physics, 118(1), 244, doi:10.1029/2012ja018275.Dst
    258. Wang, H., and H. Lühr (2013), Seasonal variation of the ion upflow in the topside ionosphere during SAPS (subauroral polarization stream) periods, Ann. Geophys., 31(9), 1521, doi:10.5194/angeo-31-1521-2013.Dst
    259. Wang, M., W. Lou, P. Li, X. Shen, and Q. Li (2013), Monitoring the ionospheric storm effect with multiple instruments in North China: July 15-16, 2012 magnetic storm event, J. Atmos. Sol.-Terr. Phys., 102, 261, doi:10.1016/j.jastp.2013.05.021.DstAE
    260. Wei, Y., et al. (2013), Can a nightside geomagnetic Delta H observed at the equator manifest a penetration electric field?, J. Geophys. Res. Space Physics, 118(6), 3557, doi:10.1002/jgra.50174.DstSYM-H
    261. Wilder, F. D., S. Eriksson, H. Korth, J. B. H. Baker, M. R. Hairston, C. Heinselman, and B. J. Anderson (2013), Field-aligned current reconfiguration and magnetospheric response to an impulse in the interplanetary magnetic field BY component, Geophys. Res. Lett., 40(11), 2489, doi:10.1002/grl.50505.AESYM-H
    262. Wing, S., M. Gkioulidou, J. R. Johnson, P. T. Newell, and C.-P. Wang (2013), Auroral particle precipitation characterized by the substorm cycle, J. Geophys. Res. Space Physics, 118(3), 1022, doi:10.1002/jgra.50160.AE
    263. Wu, Y.-W., R.-Y. Liu, B.-C. Zhang, Z.-S. Wu, H.-Q. Hu, S.-R. Zhang, Q.-H. Zhang, J.-M. Liu, and F. Honary (2013), Multi-instrument observations of plasma features in the Arctic ionosphere during the main phase of a geomagnetic storm in December 2006, J. Atmos. Sol.-Terr. Phys., 105, 358, doi:10.1016/j.jastp.2013.07.004.AESYM-H
    264. Xiao, F., Q. Zhou, Z. He, C. Yang, Y. He, and L. Tang (2013), Magnetosonic wave instability by proton ring distributions: Simultaneous data and modeling, J. Geophys. Res. Space Physics, 118(7), 4053, doi:10.1002/jgra.50401.AE
    265. Xing, X., J. Liang, E. Spanswick, L. Lyons, and V. Angelopoulos (2013), Auroral wave structures and ballooning instabilities in the plasma sheet, J. Geophys. Res. Space Physics, 118(10), 6319, doi:10.1002/2013ja019068.Dst
    266. Xiong, M., J. A. Davies, X. Feng, M. J. Owens, R. A. Harrison, C. J. Davis, and Y. D. Liu (2013), Using Coordinated Observations in Polarized White Light and Faraday Rotation to Probe the Spatial Position and Magnetic Field of an Interplanetary Sheath, Astrophys. J., 777(1), 32, doi:10.1088/0004-637x/777/1/32.Dst
    267. Xu, T. L., H. L. Jin, X. Xu, P. Guo, Y. B. Wang, and J. S. Ping (2013), Statistic analysis of the ionospheric topside scale height based on COSMIC RO measurements, J. Atmos. Sol.-Terr. Phys., 104, 29, doi:10.1016/j.jastp.2013.07.012.Dst
    268. Yamamoto, T. T., and Y. Miyoshi (2013), 0.5-4 Å X-Ray Brightenings in the Magnetosphere Observed by the Geostationary Operational Environmental Satellites, Astrophys. J., 775(2), 121, doi:10.1088/0004-637x/775/2/121.AE
    269. Yamauchi, M., I. Dandouras, H. Rème, R. Lundin, and L. M. Kistler (2013), Cluster observation of few-hour-scale evolution of structured plasma in the inner magnetosphere, Ann. Geophys., 31(9), 1569, doi:10.5194/angeo-31-1569-2013.AE
    270. Yermolaev, Y. I., I. G. Lodkina, N. S. Nikolaeva, and M. Y. Yermolaev (2013), Occurrence rate of extreme magnetic storms, J. Geophys. Res. Space Physics, 118(8), 4760, doi:10.1002/jgra.50467.Dst
    271. Yizengaw, E., et al. (2013), Observations of ULF wave related equatorial electrojet and density fluctuations, J. Atmos. Sol.-Terr. Phys., 103, 157, doi:10.1016/j.jastp.2013.03.015.DstAE
    272. Yu, Y., and A. J. Ridley (2013), Exploring the influence of ionospheric O+ outflow on magnetospheric dynamics: The effect of outflow intensity, J. Geophys. Res. Space Physics, 118(9), 5522, doi:10.1002/jgra.50528.AE
    273. Yu, Y., J. Koller, and S. K. Morley (2013), Quantifying the effect of magnetopause shadowing on electron radiation belt dropouts, Ann. Geophys., 31(11), 1929, doi:10.5194/angeo-31-1929-2013.Dst
    274. Yuan, C., and Q. Zong (2013), Relativistic electron fluxes dropout in the outer radiation belt under different solar wind conditions, J. Geophys. Res. Space Physics, 118(12), 7545, doi:10.1002/2013ja019066.Dst
    275. Yuan, Z., M. Li, Y. Xiong, H. Li, M. Zhou, D. Wang, S. Huang, X. Deng, and J. Wang (2013), Simultaneous observations of precipitating radiation belt electrons and ring current ions associated with the plasmaspheric plume, J. Geophys. Res. Space Physics, 118(7), 4391, doi:10.1002/jgra.50432.DstAE
    276. Yuan, Z., Y. Xiong, S. Zhang, X. Deng, and J. Wang (2013), Ionospheric characteristics associated with wave-particle interactions in a SED plume during a super geomagnetic storm, J. Atmos. Sol.-Terr. Phys., 95, 96, doi:10.1016/j.jastp.2013.01.015.Dst
    277. Yue, C., Y. Nishimura, L. R. Lyons, V. Angelopoulos, E. F. Donovan, Q. Shi, Z. Yao, and J. W. Bonnell (2013), Coordinated THEMIS spacecraft and all-sky imager observations of interplanetary shock effects on plasma sheet flow bursts, poleward boundary intensifications, and streamers, J. Geophys. Res. Space Physics, 118(6), 3346, doi:10.1002/jgra.50372.SYM-H
    278. Zaourar, N., M. Hamoudi, M. Mandea, G. Balasis, and M. Holschneider (2013), Wavelet-based multiscale analysis of geomagnetic disturbance, Earth Planets Space, 65(12), 1525, doi:10.5047/eps.2013.05.001.DstSYM-H
    279. Zhang, X.-Y., M. B. Moldwin, and M. Cartwright (2013), The geo-effectiveness of interplanetary small-scale magnetic fluxropes, J. Atmos. Sol.-Terr. Phys., 95, 1, doi:10.1016/j.jastp.2012.12.006.DstAE
    280. Zhang, Y. C., et al. (2013), Two different types of plasmoids in the plasma sheet: Cluster multisatellite analysis application, J. Geophys. Res. Space Physics, 118(9), 5437, doi:10.1002/jgra.50542.AE
    281. Zhao, H., and X. Li (2013), Inward shift of outer radiation belt electrons as a function of Dst index and the influence of the solar wind on electron injections into the slot region, J. Geophys. Res. Space Physics, 118(2), 756, doi:10.1029/2012ja018179.Dst
    282. Zhao, H., and X. Li (2013), Modeling energetic electron penetration into the slot region and inner radiation belt, J. Geophys. Res. Space Physics, 118(11), 6936, doi:10.1002/2013ja019240.AE
    283. Zhao, X. D., A. M. Du, and W. Y. Xu (2013), The magnetic local time distribution of ring current during the geomagnetic storm, Planet. Space Sci., 78, 52, doi:10.1016/j.pss.2013.01.008.DstAESYM-H
    284. Zhima, Z., J. Cao, W. Liu, H. Fu, J. Yang, X. Zhang, and X. Shen (2013), DEMETER observations of high-latitude chorus waves penetrating the plasmasphere during a geomagnetic storm, Geophys. Res. Lett., 40(22), 5827, doi:10.1002/2013gl058089.DstAE
    285. Zhou, M., et al. (2013), Cluster observations of kinetic structures and electron acceleration within a dynamic plasma bubble, J. Geophys. Res. Space Physics, 118(2), 674, doi:10.1029/2012ja018323.AE
    286. Zhou, X., X.-Z. Zhou, V. Angelopoulos, Q. Shi, C.-P. Wang, and H. Frey (2013), Interplanetary shock-induced current sheet disturbances leading to auroral activations: THEMIS observations, J. Geophys. Res. Space Physics, 118(6), 3173, doi:10.1002/jgra.50175.AE
    287. Zhou, Y. L., S. Y. Ma, R. S. Liu, H. Luehr, and E. Doornbos (2013), Controlling of merging electric field and IMF magnitude on storm-time changes in thermospheric mass density, Ann. Geophys., 31(1), 15, doi:10.5194/angeo-31-15-2013.DstSYM-H
    288. Zois, I. P. (2013), Solar activity and transformer failures in the Greek national electric grid, J. Space Weather Space Clim., 3, A32, doi:10.1051/swsc/2013055.Dst
    289. Zou, S., A. J. Ridley, M. B. Moldwin, M. J. Nicolls, A. J. Coster, E. G. Thomas, and J. M. Ruohoniemi (2013), Multi-instrument observations of SED during 24-25 October 2011 storm: Implications for SED formation processes, J. Geophys. Res. Space Physics, 118(12), 7798, doi:10.1002/2013ja018860.Dst
    290. ćepni, M. S., L. V. Potts, and J. B. Miima (2013), High-resolution station-based diurnal ionospheric total electron content (TEC) from dual-frequency GPS observations, Space Weather, 11(9), 520, doi:10.1002/swe.20093.Dst

    2012 278 papers↑ top

    1. A, E., A. J. Ridley, D. Zhang, and Z. Xiao (2012), Analyzing the hemispheric asymmetry in the thermospheric density response to geomagnetic storms, J. Geophys. Res. Space Physics, 117(A8), A08317, doi:10.1029/2011ja017259.Dst
    2. Abdu, M. A. (2012), Equatorial spread F/plasma bubble irregularities under storm time disturbance electric fields, J. Atmos. Sol.-Terr. Phys., 75, 44, doi:10.1016/j.jastp.2011.04.024.DstAESYM-HASY-H
    3. Abdu, M. A., I. S. Batista, F. Bertoni, B. W. Reinisch, E. A. Kherani, and J. H. A. Sobral (2012), Equatorial ionosphere responses to two magnetic storms of moderate intensity from conjugate point observations in Brazil, J. Geophys. Res. Space Physics, 117(A5), A05321, doi:10.1029/2011ja017174.DstAESYM-H
    4. Adamson, E., A. Otto, and K. Nykyri (2012), 3-D mesoscale MHD simulations of magnetospheric cusp-like configurations: cusp diamagnetic cavities and boundary structure, Ann. Geophys., 30(2), 325, doi:10.5194/angeo-30-325-2012.AE
    5. Aggarwal, M., H. P. Joshi, K. N. Iyer, Y.-S. Kwak, J. J. Lee, H. Chandra, and K. S. Cho (2012), Day-to-day variability of equatorial anomaly in GPS-TEC during low solar activity period, Adv. Space Res., 49(12), 1709, doi:10.1016/j.asr.2012.03.005.Dst
    6. Alexandrova, A., et al. (2012), Remote estimation of reconnection parameters in the Earth's magnetotail: model and observations, Ann. Geophys., 30(12), 1727, doi:10.5194/angeo-30-1727-2012.AE
    7. Amabayo, E. B., L.-A. McKinnell, and P. J. Cilliers (2012), Ionospheric response over South Africa to the geomagnetic storm of 11-13 April 2001, J. Atmos. Sol.-Terr. Phys., 84, 62, doi:10.1016/j.jastp.2012.06.002.DstAE
    8. Amariutei, O. A., and N. Y. Ganushkina (2012), On the prediction of the auroral westward electrojet index, Ann. Geophys., 30(5), 841, doi:10.5194/angeo-30-841-2012.DstAE
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    197. Sauvaud, J.-A., et al. (2012), A study of the changes of the near-Earth plasma sheet and lobe driven by multiple substorms: Comparison with a full particle simulation of reconnection, J. Geophys. Res. Space Physics, 117(A1), A01221, doi:10.1029/2011ja017033.AE
    198. Schiller, Q., X. Li, J. Koller, H. Godinez, and D. L. Turner (2012), A parametric study of the source rate for outer radiation belt electrons using a Kalman filter, J. Geophys. Res. Space Physics, 117(A9), A09211, doi:10.1029/2012ja017779.Dst
    199. Sekar, R., D. Chakrabarty, and D. Pallamraju (2012), Optical signature of shear in the zonal plasma flow along with a tilted structure associated with equatorial spread F during a space weather event, J. Atmos. Sol.-Terr. Phys., 75, 57, doi:10.1016/j.jastp.2011.05.009.AESYM-HASY-H
    200. Sergeev, V. A., I. A. Chernyaev, S. V. Dubyagin, Y. Miyashita, V. Angelopoulos, P. D. Boakes, R. Nakamura, and M. G. Henderson (2012), Energetic particle injections to geostationary orbit: Relationship to flow bursts and magnetospheric state, J. Geophys. Res. Space Physics, 117(A10), A10207, doi:10.1029/2012ja017773.SYM-H
    201. Sergeev, V., Y. Nishimura, M. Kubyshkina, V. Angelopoulos, R. Nakamura, and H. Singer (2012), Magnetospheric location of the equatorward prebreakup arc, J. Geophys. Res. Space Physics, 117(A1), A01212, doi:10.1029/2011ja017154.AE
    202. Sharma, S., P. Galav, N. Dashora, R. S. Dabas, and R. Pandey (2012), Study of ionospheric TEC during space weather event of 24 August 2005 at two different longitudes, J. Atmos. Sol.-Terr. Phys., 75, 133, doi:10.1016/j.jastp.2011.05.006.AESYM-HASY-H
    203. Shi, R., D. Han, B. Ni, Z.-J. Hu, C. Zhou, and X. Gu (2012), Intensification of dayside diffuse auroral precipitation: contribution of dayside Whistler-mode chorus waves in realistic magnetic fields, Ann. Geophys., 30(9), 1297, doi:10.5194/angeo-30-1297-2012.Dst
    204. Shi, Y., E. Zesta, L. R. Lyons, X. Xing, V. Angelopoulos, E. Donovan, M. A. McCready, and C. J. Heinselman (2012), Multipoint observations of substorm pre-onset flows and time sequence in the ionosphere and magnetosphere, J. Geophys. Res. Space Physics, 117(A9), A09203, doi:10.1029/2011ja017185.AE
    205. Shim, J. S., et al. (2012), CEDAR Electrodynamics Thermosphere Ionosphere (ETI) Challenge for systematic assessment of ionosphere/thermosphere models: Electron density, neutral density, NmF2, and hmF2 using space based observations, Space Weather, 10, S10004, doi:10.1029/2012sw000851.Dst
    206. Shimeis, A., I. Fathy, C. Amory-Mazaudier, R. Fleury, A. M. Mahrous, K. Yumoto, and K. Groves (2012), Signature of the coronal hole near the north crest equatorial anomaly over Egypt during the strong geomagnetic storm 5 April 2010, J. Geophys. Res. Space Physics, 117(A7), A07309, doi:10.1029/2012ja017753.DstAE
    207. Shinbori, A., et al. (2012), Magnetic local time and latitude dependence of amplitude of the main impulse (MI) of geomagnetic sudden commencements and its seasonal variation, J. Geophys. Res. Space Physics, 117(A8), A08322, doi:10.1029/2012ja018006.DstSYM-H
    208. Shiokawa, K., M. Mori, Y. Otsuka, S. Oyama, and S. Nozawa (2012), Motion of high-latitude nighttime medium-scale traveling ionospheric disturbances associated with auroral brightening, J. Geophys. Res. Space Physics, 117(A10), A10316, doi:10.1029/2012ja017928.AE
    209. Shprits, Y., M. Daae, and B. Ni (2012), Statistical analysis of phase space density buildups and dropouts, J. Geophys. Res. Space Physics, 117(A1), A01219, doi:10.1029/2011ja016939.Dst
    210. Simi, K. G., S. V. Thampi, D. Chakrabarty, B. M. Pathan, S. R. Prabhakaran Nayar, and T. Kumar Pant (2012), Extreme changes in the equatorial electrojet under the influence of interplanetary electric field and the associated modification in the low-latitude F region plasma distribution, J. Geophys. Res. Space Physics, 117(A3), A03331, doi:10.1029/2011ja017328.AESYM-H
    211. Sindelarova, T., Z. Mosna, D. Buresova, J. Chum, L.-A. McKinnell, and R. Athieno (2012), Observations of wave activity in the ionosphere over South Africa in geomagnetically quiet and disturbed periods, Adv. Space Res., 50(2), 182, doi:10.1016/j.asr.2012.04.016.DstAE
    212. Singh, A. K., A. K. Sinha, B. M. Pathan, and R. Rawat (2012), Solar flare effect on low latitude asymmetric indices, J. Atmos. Sol.-Terr. Phys., 77, 119, doi:10.1016/j.jastp.2011.12.010.AESYM-HSYM-DASY-HASY-D
    213. Singh, A. K., A. K. Sinha, R. Rajaram, and B. M. Pathan (2012), Storm-time longitudinally propagating asymmetric modes at low latitudes, Ann. Geophys., 30(1), 131, doi:10.5194/angeo-30-131-2012.DstAESYM-HASY-H
    214. Singh, A. K., A. K. Sinha, R. Rawat, B. Jayashree, B. M. Pathan, and A. Dhar (2012), A broad climatology of very high latitude substorms, Adv. Space Res., 50(11), 1512, doi:10.1016/j.asr.2012.07.034.AEASY-HASY-D
    215. Singh, Y. P., and Badruddin (2012), Study of the influence of magnetic fluctuations and solar plasma density on the solar wind-magnetosphere coupling, J. Atmos. Sol.-Terr. Phys., 75, 15, doi:10.1016/j.jastp.2011.05.005.Dst
    216. Siscoe, G. L., J. J. Love, and J. L. Gannon (2012), Problem of the Love-Gannon relation between the asymmetric disturbance field and Dst, J. Geophys. Res. Space Physics, 117(A9), A09216, doi:10.1029/2012ja017879.DstSYM-HASY-H
    217. Sitnov, M. I., A. Y. Ukhorskiy, and G. K. Stephens (2012), Forecasting of global data-binning parameters for high-resolution empirical geomagnetic field models, Space Weather, 10, S09001, doi:10.1029/2012sw000783.DstSYM-H
    218. Snekvik, K., E. Tanskanen, N. Østgaard, L. Juusola, K. Laundal, E. I. Gordeev, and A. L. Borg (2012), Changes in the magnetotail configuration before near-Earth reconnection, J. Geophys. Res. Space Physics, 117(A2), A02219, doi:10.1029/2011ja017040.AE
    219. Song, Q., F. Ding, W. Wan, B. Ning, and L. Liu (2012), Global propagation features of large-scale traveling ionospheric disturbances during the magnetic storm of 7~10 November 2004, Ann. Geophys., 30(4), 683, doi:10.5194/angeo-30-683-2012.AESYM-H
    220. Sreelekshmi, R. C., K. Asokan, and K. Satheesh Kumar (2012), Deterministic nature of the underlying dynamics of surface wind fluctuations, Ann. Geophys., 30(10), 1503, doi:10.5194/angeo-30-1503-2012.AE
    221. Su, Y.-J., W. R. Johnston, J. M. Albert, G. P. Ginet, M. J. Starks, and C. J. Roth (2012), SCATHA measurements of electron decay times at 5 < L ≤ 8, J. Geophys. Res. Space Physics, 117(A8), A08212, doi:10.1029/2012ja017685.DstAE
    222. Sun, S. J., P. P. Ban, C. Chen, Z. W. Xu, and Z. W. Zhao (2012), On the vertical drift of ionospheric F layer during disturbance time: Results from ionosondes, J. Geophys. Res. Space Physics, 117(A1), A01303, doi:10.1029/2011ja017106.DstAE
    223. Sun, S., P. Ban, C. Chen, and Z. Xu (2012), An empirical correction model for low-latitude storm-time ionospheric foF2 considering the equatorial E×B drift, Adv. Space Res., 49(9), 1356, doi:10.1016/j.asr.2012.02.015.AE
    224. Sun, T. R., C. Wang, and Y. Wang (2012), Different Bz response regions in the nightside magnetosphere after the arrival of an interplanetary shock: Multipoint observations compared with MHD simulations, J. Geophys. Res. Space Physics, 117(A5), A05227, doi:10.1029/2011ja017303.DstAESYM-H
    225. Sun, T. R., C. Wang, N. L. Borodkova, and G. N. Zastenker (2012), Geosynchronous magnetic field responses to fast solar wind dynamic pressure enhancements: MHD field model, Ann. Geophys., 30(8), 1285, doi:10.5194/angeo-30-1285-2012.Dst
    226. Sun, Y. Y., J. Y. Liu, and C. H. Lin (2012), A statistical study of low latitude F region irregularities at Brazilian longitudinal sector response to geomagnetic storms during post-sunset hours in solar cycle 23, J. Geophys. Res. Space Physics, 117(A3), A03333, doi:10.1029/2011ja017419.Dst
    227. Suvorova, A. V., L.-C. Tsai, and A. V. Dmitriev (2012), On relation between mid-latitude ionospheric ionization and quasi-trapped energetic electrons during 15 December 2006 magnetic storm, Planet. Space Sci., 60(1), 363, doi:10.1016/j.pss.2011.11.001.Dst
    228. Tanaka, Y.-M., Y. Ebihara, S. Saita, A. Yoshikawa, Y. Obana, and A. T. Weatherwax (2012), Poleward moving auroral arcs observed at the South Pole Station and the interpretation by field line resonances, J. Geophys. Res. Space Physics, 117(A9), A09305, doi:10.1029/2012ja017899.AE
    229. Tang, C. L. (2012), A plasma flow vortex in the magnetotail and its related ionospheric signatures, Ann. Geophys., 30(3), 537, doi:10.5194/angeo-30-537-2012.AE
    230. Torta, J. M., L. Serrano, J. R. Regué, A. M. SáNchez, and E. RoldáN (2012), Geomagnetically induced currents in a power grid of northeastern Spain, Space Weather, 10, S06002, doi:10.1029/2012sw000793.Dst
    231. Troshichev, O. A., and A. S. Janzhura (2012), Physical implications of discrepancy between summer and winter PC indices observed in the course of magnetospheric substorms, Adv. Space Res., 50(1), 77, doi:10.1016/j.asr.2012.03.017.AE
    232. Troshichev, O., D. Sormakov, and A. Janzhura (2012), Sawtooth substorms generated under conditions of the steadily high solar wind energy input into the magnetosphere: Relationship between PC, AL and ASYM indices, Adv. Space Res., 49(5), 872, doi:10.1016/j.asr.2011.12.011.AE
    233. Tsuji, Y., A. Shinbori, T. Kikuchi, and T. Nagatsuma (2012), Magnetic latitude and local time distributions of ionospheric currents during a geomagnetic storm, J. Geophys. Res. Space Physics, 117(A7), A07318, doi:10.1029/2012ja017566.SYM-H
    234. Tsurutani, B. T., B. J. Falkowski, O. P. Verkhoglyadova, J. S. Pickett, O. SantolíK, and G. S. Lakhina (2012), Dayside ELF electromagnetic wave survey: A Polar statistical study of chorus and hiss, J. Geophys. Res. Space Physics, 117(A8), A00L12, doi:10.1029/2011ja017180.DstSYM-H
    235. Tu, W., S. R. Elkington, X. Li, W. Liu, and J. Bonnell (2012), Quantifying radial diffusion coefficients of radiation belt electrons based on global MHD simulation and spacecraft measurements, J. Geophys. Res. Space Physics, 117(A10), A10210, doi:10.1029/2012ja017901.DstAE
    236. Tulasi Ram, S., N. Balan, B. Veenadhari, S. Gurubaran, S. Ravindran, T. Tsugawa, H. Liu, K. Niranjan, and T. Nagatsuma (2012), First observational evidence for opposite zonal electric fields in equatorial E and F region altitudes during a geomagnetic storm period, J. Geophys. Res. Space Physics, 117(A9), A09318, doi:10.1029/2012ja018045.Dst
    237. Uma, G., et al. (2012), Ionospheric responses to two large geomagnetic storms over Japanese and Indian longitude sectors, J. Atmos. Sol.-Terr. Phys., 74, 94, doi:10.1016/j.jastp.2011.10.001.DstAESYM-H
    238. Unnikrishnan, K. (2012), Prediction of magnetic substorms using a state space model, J. Atmos. Sol.-Terr. Phys., 75, 22, doi:10.1016/j.jastp.2011.05.008.AE
    239. Usanova, M. E., I. R. Mann, J. Bortnik, L. Shao, and V. Angelopoulos (2012), THEMIS observations of electromagnetic ion cyclotron wave occurrence: Dependence on AE, SYMH, and solar wind dynamic pressure, J. Geophys. Res. Space Physics, 117(A10), A10218, doi:10.1029/2012ja018049.DstAESYM-H
    240. Uwamahoro, J., L. A. McKinnell, and J. B. Habarulema (2012), Estimating the geoeffectiveness of halo CMEs from associated solar and IP parameters using neural networks, Ann. Geophys., 30(6), 963, doi:10.5194/angeo-30-963-2012.Dst
    241. Vichare, G., R. Rawat, A. Hanchinal, A. K. Sinha, A. Dhar, and B. M. Pathan (2012), Seasonal evolution of S q current system at sub-auroral latitude, Earth Planets Space, 64(11), 1023, doi:10.5047/eps.2012.04.007.AE
    242. Vieira, L. R., A. D. Lago, N. R. Rigozo, M. R. da Silva, C. R. Braga, A. Petry, and N. J. Schuch (2012), Near 13.5-day periodicity in Muon Detector data during late 2001 and early 2002, Adv. Space Res., 49(11), 1615, doi:10.1016/j.asr.2012.01.017.Dst
    243. Vyas, B. M., and S. Sunda (2012), The solar eclipse and its associated ionospheric TEC variations over Indian stations on January 15, 2010, Adv. Space Res., 49(3), 546, doi:10.1016/j.asr.2011.11.009.Dst
    244. Wang, H., H. Lühr, and S. Y. Ma (2012), The relation between subauroral polarization streams, westward ion fluxes, and zonal wind: Seasonal and hemispheric variations, J. Geophys. Res. Space Physics, 117(A4), A04323, doi:10.1029/2011ja017378.SYM-H
    245. Watt, C. E. J., R. Rankin, and A. W. Degeling (2012), Whistler mode wave growth and propagation in the prenoon magnetosphere, J. Geophys. Res. Space Physics, 117(A6), A06205, doi:10.1029/2012ja017765.AE
    246. Wei, Y., et al. (2012), Enhanced atmospheric oxygen outflow on Earth and Mars driven by a corotating interaction region, J. Geophys. Res. Space Physics, 117(A3), A03208, doi:10.1029/2011ja017340.SYM-H
    247. Wei, Y., W. Wan, B. Zhao, M. Hong, A. Ridley, Z. Ren, M. Fraenz, E. Dubinin, and M. He (2012), Solar wind density controlling penetration electric field at the equatorial ionosphere during a saturation of cross polar cap potential, J. Geophys. Res. Space Physics, 117(A9), A09308, doi:10.1029/2012ja017597.DstSYM-H
    248. Weygand, J. M., O. Amm, V. Angelopoulos, S. E. Milan, A. Grocott, H. Gleisner, and C. Stolle (2012), Comparison between SuperDARN flow vectors and equivalent ionospheric currents from ground magnetometer arrays, J. Geophys. Res. Space Physics, 117(A5), A05325, doi:10.1029/2011ja017407.AE
    249. Wilder, F. D., G. Crowley, B. J. Anderson, and A. D. Richmond (2012), Intense dayside Joule heating during the 5 April 2010 geomagnetic storm recovery phase observed by AMIE and AMPERE, J. Geophys. Res. Space Physics, 117(A5), A05207, doi:10.1029/2011ja017262.Dst
    250. Wiltberger, M., L. Qian, C.-L. Huang, W. Wang, R. E. Lopez, A. G. Burns, S. C. Solomon, Y. Deng, and Y. Huang (2012), CMIT study of CR2060 and 2068 comparing L1 and MAS solar wind drivers, J. Atmos. Sol.-Terr. Phys., 83, 39, doi:10.1016/j.jastp.2012.01.005.SYM-H
    251. Wise, J. O., W. J. Burke, and E. K. Sutton (2012), Globally averaged exospheric temperatures derived from CHAMP and GRACE accelerometer measurements, J. Geophys. Res. Space Physics, 117(A4), A04312, doi:10.1029/2011ja017108.Dst
    252. Woods, T. N., et al. (2012), Extreme Ultraviolet Variability Experiment (EVE) on the Solar Dynamics Observatory (SDO): Overview of Science Objectives, Instrument Design, Data Products, and Model Developments, Sol. Phys., 275(1-2), 115, doi:10.1007/s11207-009-9487-6.Dst
    253. Xing, X., L. R. Lyons, X.-Z. Zhou, V. Angelopoulos, E. Donovan, D. Larson, C. Carlson, and U. Auster (2012), On the formation of pre-onset azimuthal pressure gradient in the near-Earth plasma sheet, J. Geophys. Res. Space Physics, 117(A8), A08224, doi:10.1029/2012ja017840.Dst
    254. Yagodkina, O. I., I. V. Despirak, and V. G. Vorobjev (2012), Spatial distribution of auroral precipitation during storms caused by magnetic clouds, J. Atmos. Sol.-Terr. Phys., 77, 1, doi:10.1016/j.jastp.2011.06.009.DstAEASY-H
    255. Yakovchouk, O. S., K. Mursula, L. Holappa, I. S. Veselovsky, and A. Karinen (2012), Average properties of geomagnetic storms in 1932-2009, J. Geophys. Res. Space Physics, 117(A3), A03201, doi:10.1029/2011ja017093.DstASY-H
    256. Yamazaki, Y., A. D. Richmond, and K. Yumoto (2012), Stratospheric warmings and the geomagnetic lunar tide: 1958-2007, J. Geophys. Res. Space Physics, 117(A4), A04301, doi:10.1029/2012ja017514.Dst
    257. Yamazaki, Y., K. Yumoto, D. McNamara, T. Hirooka, T. Uozumi, K. Kitamura, S. Abe, and A. Ikeda (2012), Ionospheric current system during sudden stratospheric warming events, J. Geophys. Res. Space Physics, 117(A3), A03334, doi:10.1029/2011ja017453.SYM-H
    258. Yang, J., F. R. Toffoletto, R. A. Wolf, S. Sazykin, P. A. Ontiveros, and J. M. Weygand (2012), Large-scale current systems and ground magnetic disturbance during deep substorm injections, J. Geophys. Res. Space Physics, 117(A4), A04223, doi:10.1029/2011ja017415.AE
    259. Yang, J., F. R. Toffoletto, X. Xing, and V. Angelopoulos (2012), RCM-E simulation of the 13 March 2009 steady magnetospheric convection event, J. Geophys. Res. Space Physics, 117(A3), A03224, doi:10.1029/2011ja017245.AE
    260. Yao, Z. H., et al. (2012), Mechanism of substorm current wedge formation: THEMIS observations, Geophys. Res. Lett., 39(13), L13102, doi:10.1029/2012gl052055.AE
    261. Yau, A. W., A. Howarth, W. K. Peterson, and T. Abe (2012), Transport of thermal-energy ionospheric oxygen (O+) ions between the ionosphere and the plasma sheet and ring current at quiet times preceding magnetic storms, J. Geophys. Res. Space Physics, 117(A7), A07215, doi:10.1029/2012ja017803.DstAESYM-H
    262. Yermolaev, Y. I., I. G. Lodkina, N. S. Nikolaeva, and M. Y. Yermolaev (2012), Recovery phase of magnetic storms induced by different interplanetary drivers, J. Geophys. Res. Space Physics, 117(A8), A08207, doi:10.1029/2012ja017716.Dst
    263. Yermolaev, Y. I., N. S. Nikolaeva, I. G. Lodkina, and M. Y. Yermolaev (2012), Geoeffectiveness and efficiency of CIR, sheath, and ICME in generation of magnetic storms, J. Geophys. Res. Space Physics, 117, A00L07, doi:10.1029/2011ja017139.DstAE
    264. Young, M. A., M. Lessard, M. Engebretson, J. R. Woodroffe, and K. Oksavik (2012), Spectral enhancements associated with Pi1B events observed at high latitude, J. Geophys. Res. Space Physics, 117(A9), A09314, doi:10.1029/2012ja017940.AE
    265. Yu, Y., J. Koller, S. Zaharia, and V. Jordanova (2012), L* neural networks from different magnetic field models and their applicability, Space Weather, 10(2), 02014, doi:10.1029/2011sw000743.Dst
    266. Yu, Y., V. Jordanova, S. Zaharia, J. Koller, J. Zhang, and L. M. Kistler (2012), Validation study of the magnetically self-consistent inner magnetosphere model RAM-SCB, J. Geophys. Res. Space Physics, 117(A3), A03222, doi:10.1029/2011ja017321.AESYM-H
    267. Yuan, C. J., and Q.-G. Zong (2012), Quantitative aspects of variations of 1.5-6.0 MeV electrons in the outer radiation belt during magnetic storms, J. Geophys. Res. Space Physics, 117(A11), A11208, doi:10.1029/2011ja017346.Dst
    268. Yuan, Z., Y. Xiong, Y. Pang, M. Zhou, X. Deng, J. G. Trotignon, E. Lucek, and J. Wang (2012), Wave-particle interaction in a plasmaspheric plume observed by a Cluster satellite, J. Geophys. Res. Space Physics, 117(A3), A03205, doi:10.1029/2011ja017152.DstSYM-H
    269. Zhang, H., D. G. Sibeck, Q.-G. Zong, J. P. McFadden, D. Larson, K.-H. Glassmeier, and V. Angelopoulos (2012), Global magnetospheric response to an interplanetary shock: THEMIS observations, Ann. Geophys., 30(2), 379, doi:10.5194/angeo-30-379-2012.Dst
    270. Zhang, J. J., C. Wang, and B. B. Tang (2012), Modeling geomagnetically induced electric field and currents by combining a global MHD model with a local one-dimensional method, Space Weather, 10, S05005, doi:10.1029/2012sw000772.AESYM-H
    271. Zhang, X., H. Chen, J. Liu, X. Shen, Y. Miao, X. Du, and J. Qian (2012), Ground-based and satellite DC-ULF electric field anomalies around Wenchuan M8.0 earthquake, Adv. Space Res., 50(1), 85, doi:10.1016/j.asr.2012.03.018.AE
    272. Zhao, B., W. Wan, J. Lei, Y. Wei, Y. Sahai, and B. Reinisch (2012), Positive ionospheric storm effects at Latin America longitude during the superstorm of 20-22 November 2003: revisit, Ann. Geophys., 30(5), 831, doi:10.5194/angeo-30-831-2012.DstAESYM-H
    273. Zhao, H., and Q.-G. Zong (2012), Seasonal and diurnal variation of geomagnetic activity: Russell-McPherron effect during different IMF polarity and/or extreme solar wind conditions, J. Geophys. Res. Space Physics, 117(A11), A11222, doi:10.1029/2012ja017845.DstAE
    274. Zhenzhong, X., W. Weimin, Z. Ren, and Y. Shenggao (2012), Variation of ionospheric total electron content at crest of equatorial anomaly in China from 1997 to 2004, Adv. Space Res., 49(3), 539, doi:10.1016/j.asr.2011.11.008.Dst
    275. Zhou, C., Z. Zhao, G. Yang, G. Chen, Y. Hu, and Y. Zhang (2012), Evidence of low-latitude daytime large-scale traveling ionospheric disturbances observed by high-frequency multistatic backscatter sounding system during a geomagnetically quiet period, J. Geophys. Res. Space Physics, 117(A6), A06302, doi:10.1029/2012ja017605.Dst
    276. Zolotukhina, N., N. Polekh, V. Kurkin, O. Pirog, S. Samsonov, and A. Moiseyev (2012), Magnetospheric disturbances associated with the 13 December 2006 solar flare and their ionospheric effects over North-East Asia, Adv. Space Res., 49(5), 883, doi:10.1016/j.asr.2011.11.038.DstAESYM-H
    277. Zou, Y., Y. Nishimura, L. R. Lyons, and E. F. Donovan (2012), A statistical study of the relative locations of electron and proton auroral boundaries inferred from meridian scanning photometer observations, J. Geophys. Res. Space Physics, 117(A6), A06206, doi:10.1029/2011ja017357.AE
    278. Živković, T., and K. Rypdal (2012), Organization of the magnetosphere during substorms, J. Geophys. Res. Space Physics, 117(A5), A05212, doi:10.1029/2011ja016878.AESYM-HSYM-D

    2011 323 papers↑ top

    1. Abe, M., S. Taguchi, M. R. Collier, and T. E. Moore (2011), Two azimuthally separated regions of cusp ion injection observed via energetic neutral atoms, J. Geophys. Res. Space Physics, 116(A10), A10225, doi:10.1029/2011ja016778.SYM-H
    2. Adewale, A. O., E. O. Oyeyemi, A. B. Adeloye, C. M. Ngwira, and R. Athieno (2011), Responses of equatorial F region to different geomagnetic storms observed by GPS in the African sector, J. Geophys. Res. Space Physics, 116(A12), A12319, doi:10.1029/2011ja016998.Dst
    3. Akasofu, S.-I. (2011), A Historical Review of the Geomagnetic Storm-Producing Plasma Flows from the Sun, Space Sci. Rev., 164(1-4), 85, doi:10.1007/s11214-011-9856-y.DstAE
    4. Alfonsi, L., L. Spogli, J. R. Tong, G. de Franceschi, V. Romano, A. Bourdillon, M. Le Huy, and C. N. Mitchell (2011), GPS scintillation and TEC gradients at equatorial latitudes in April 2006, Adv. Space Res., 47(10), 1750, doi:10.1016/j.asr.2010.04.020.DstAE
    5. Alves, M. V., E. Echer, and W. D. Gonzalez (2011), Geoeffectiveness of solar wind interplanetary magnetic structures, J. Atmos. Sol.-Terr. Phys., 73(11-12), 1380, doi:10.1016/j.jastp.2010.07.024.DstAE
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    280. Veronese, T. B., R. R. Rosa, M. J. A. Bolzan, F. C. Rocha Fernandes, H. S. Sawant, and M. Karlicky` (2011), Fluctuation analysis of solar radio bursts associated with geoeffective X-class flares, J. Atmos. Sol.-Terr. Phys., 73(11-12), 1311, doi:10.1016/j.jastp.2010.09.030.Dst
    281. Vichare, G., and R. Rajaram (2011), Global features of quiet time counterelectrojet observed by Ørsted, J. Geophys. Res. Space Physics, 116(A4), A04306, doi:10.1029/2009ja015244.Dst
    282. Vijaya Lekshmi, D., N. Balan, S. Tulasi Ram, and J. Y. Liu (2011), Statistics of geomagnetic storms and ionospheric storms at low and mid latitudes in two solar cycles, J. Geophys. Res. Space Physics, 116(A11), A11328, doi:10.1029/2011ja017042.Dst
    283. Viljanen, A., and E. Tanskanen (2011), Climatology of rapid geomagnetic variations at high latitudes over two solar cycles, Ann. Geophys., 29(10), 1783, doi:10.5194/angeo-29-1783-2011.DstAE
    284. Villante, U., and M. Piersanti (2011), Sudden impulses at geosynchronous orbit and at ground, J. Atmos. Sol.-Terr. Phys., 73(1), 61, doi:10.1016/j.jastp.2010.01.008.DstSYM-H
    285. Vlasov, A., K. Kauristie, M. van de Kamp, J.-P. Luntama, and A. Pogoreltsev (2011), A study of Traveling Ionospheric Disturbances and Atmospheric Gravity Waves using EISCAT Svalbard Radar IPY-data, Ann. Geophys., 29(11), 2101, doi:10.5194/angeo-29-2101-2011.AE
    286. Vogiatzis, I. I., O. E. Malandraki, Q.-G. Zong, X.-Z. Zhou, T. E. Sarris, E. T. Sarris, H. Zhang, and T. A. Fritz (2011), THEMIS observations of earthward convected flux ropes triggering field dipolarization/substorm expansion and associated particle energization, Ann. Geophys., 29(11), 2117, doi:10.5194/angeo-29-2117-2011.AE
    287. Volwerk, M., et al. (2011), Interplanetary magnetic field rotations followed from L1 to the ground: the response of the Earth's magnetosphere as seen by multi-spacecraft and ground-based observations, Ann. Geophys., 29(9), 1549, doi:10.5194/angeo-29-1549-2011.AE
    288. Vörös, Z. (2011), Magnetic reconnection associated fluctuations in the deep magnetotail: ARTEMIS results, Nonlinear Processes Geophys., 18(6), 861, doi:10.5194/npg-18-861-2011.AE
    289. Wang, C., J. J. Zhang, B. B. Tang, and S. Y. Fu (2011), Comparison of equivalent current systems for the substorm event of 8 March 2008 derived from the global PPMLR-MHD model and the KRM algorithm, J. Geophys. Res. Space Physics, 116(A7), A07207, doi:10.1029/2011ja016497.AESYM-H
    290. Wang, C.-P., M. Gkioulidou, L. R. Lyons, R. A. Wolf, V. Angelopoulos, T. Nagai, J. M. Weygand, and A. T. Y. Lui (2011), Spatial distributions of ions and electrons from the plasma sheet to the inner magnetosphere: Comparisons between THEMIS-Geotail statistical results and the Rice convection model, J. Geophys. Res. Space Physics, 116(A11), A11216, doi:10.1029/2011ja016809.AE
    291. Wang, H., and H. Lühr (2011), The efficiency of mechanisms driving Subauroral Polarization Streams (SAPS), Ann. Geophys., 29(7), 1277, doi:10.5194/angeo-29-1277-2011.AE
    292. Wei, H.-L., S. A. Billings, A. Surjalal Sharma, S. Wing, R. J. Boynton, and S. N. Walker (2011), Forecasting relativistic electron flux using dynamic multiple regression models, Ann. Geophys., 29(2), 415, doi:10.5194/angeo-29-415-2011.Dst
    293. Wei, Y., et al. (2011), Responses of the ionospheric electric field to the sheath region of ICME: A case study, J. Atmos. Sol.-Terr. Phys., 73(1), 123, doi:10.1016/j.jastp.2010.03.004.DstAESYM-HASY-HASY-D
    294. Wei, Y., W. Wan, Z. Pu, M. Hong, Q. Zong, J. Guo, B. Zhao, and Z. Ren (2011), The transition to overshielding after sharp and gradual interplanetary magnetic field northward turning, J. Geophys. Res. Space Physics, 116(A1), A01211, doi:10.1029/2010ja015985.DstSYM-HASY-D
    295. Weimer, D. R., B. R. Bowman, E. K. Sutton, and W. K. Tobiska (2011), Predicting global average thermospheric temperature changes resulting from auroral heating, J. Geophys. Res. Space Physics, 116(A1), A01312, doi:10.1029/2010ja015685.Dst
    296. Welling, D. T., V. K. Jordanova, S. G. Zaharia, A. Glocer, and G. Toth (2011), The effects of dynamic ionospheric outflow on the ring current, J. Geophys. Res. Space Physics, 116, A00J19, doi:10.1029/2010ja015642.Dst
    297. Wild, J. A., et al. (2011), Midnight sector observations of auroral omega bands, J. Geophys. Res. Space Physics, 116, A00I30, doi:10.1029/2010ja015874.AE
    298. Wilson, L. B. I., C. A. Cattell, P. J. Kellogg, J. R. Wygant, K. Goetz, A. Breneman, and K. Kersten (2011), The properties of large amplitude whistler mode waves in the magnetosphere: Propagation and relationship with geomagnetic activity, Geophys. Res. Lett., 38(17), L17107, doi:10.1029/2011gl048671.AE
    299. Winglee, R. M., and E. Harnett (2011), Influence of heavy ionospheric ions on substorm onset, J. Geophys. Res. Space Physics, 116(A11), A11212, doi:10.1029/2011ja016447.Dst
    300. Woelfflé, A., D. Boscher, and I. Dandouras (2011), Plasma transport modelling in the inner magnetosphere: effects of magnetic field, electric field and exospheric models, Ann. Geophys., 29(2), 427, doi:10.5194/angeo-29-427-2011.Dst
    301. Wu, C. C., and T. Chang (2011), Rank-Ordered Multifractal Analysis (ROMA) of probability distributions in fluid turbulence, Nonlinear Processes Geophys., 18(2), 261, doi:10.5194/npg-18-261-2011.AE
    302. Wu, C.-C., and R. P. Lepping (2011), Statistical Comparison of Magnetic Clouds with Interplanetary Coronal Mass Ejections for Solar Cycle 23, Sol. Phys., 269(1), 141, doi:10.1007/s11207-010-9684-3.Dst
    303. Wu, C.-C., M. Dryer, S. T. Wu, B. E. Wood, C. D. Fry, K. Liou, and S. Plunkett (2011), Global three-dimensional simulation of the interplanetary evolution of the observed geoeffective coronal mass ejection during the epoch 1-4 August 2010, J. Geophys. Res. Space Physics, 116(A12), A12103, doi:10.1029/2011ja016947.Dst
    304. Xu, J., W. Wang, J. Lei, E. K. Sutton, and G. Chen (2011), The effect of periodic variations of thermospheric density on CHAMP and GRACE orbits, J. Geophys. Res. Space Physics, 116(A2), A02315, doi:10.1029/2010ja015995.Dst
    305. Xu, T., Z. Chen, C. Li, J. Wu, Y. Hu, and Z. Wu (2011), GPS total electron content and surface latent heat flux variations before the 11 March 2011 M9.0 Sendai earthquake, Adv. Space Res., 48(8), 1311, doi:10.1016/j.asr.2011.06.024.Dst
    306. Yadav, S., R. M. Das, R. S. Dabas, P. Subrahmanyam, and A. K. Gwal (2011), Response of low-latitude ionosphere of the Indian region during the supergeomagnetic storm of 31 March 2001, J. Geophys. Res. Space Physics, 116(A8), A08311, doi:10.1029/2010ja016373.DstAE
    307. Yamazaki, Y., et al. (2011), An empirical model of the quiet daily geomagnetic field variation, J. Geophys. Res. Space Physics, 116(A10), A10312, doi:10.1029/2011ja016487.AE
    308. Yamazaki, Y., K. Yumoto, T. Uozumi, and M. G. Cardinal (2011), Intensity variations of the equivalent Sq current system along the 210° magnetic meridian, J. Geophys. Res. Space Physics, 116(A10), A10308, doi:10.1029/2011ja016632.Dst
    309. Yang, B., et al. (2011), Pitch angle evolutions of oxygen ions driven by storm time ULF poloidal standing waves, J. Geophys. Res. Space Physics, 116(A3), A03207, doi:10.1029/2010ja016047.Dst
    310. Yang, Y. F., J. Y. Lu, J.-S. Wang, Z. Peng, Q. Qian, and Y. Xiao (2011), Different response of dayside auroras to increases in solar wind dynamic pressure, J. Geophys. Res. Space Physics, 116(A8), A08314, doi:10.1029/2010ja016385.SYM-H
    311. Yu, Y.-Q., and A. J. Ridley (2011), Understanding the response of the ionosphere-magnetosphere system to sudden solar wind density increases, J. Geophys. Res. Space Physics, 116(A4), A04210, doi:10.1029/2010ja015871.AESYM-H
    312. Yuan, Z., L. Zhao, Y. Xiong, X. Deng, and J. Wang (2011), Energetic particle precipitation and the influence on the sub-ionosphere in the SED plume during a super geomagnetic storm, J. Geophys. Res. Space Physics, 116(A9), A09317, doi:10.1029/2011ja016821.DstAE
    313. Yue, C., and Q. Zong (2011), Solar wind parameters and geomagnetic indices for four different interplanetary shock/ICME structures, J. Geophys. Res. Space Physics, 116(A12), A12201, doi:10.1029/2011ja017013.DstAE
    314. Yue, C., Q. Zong, Y. Wang, I. I. Vogiatzis, Z. Pu, S. Fu, and Q. Shi (2011), Inner magnetosphere plasma characteristics in response to interplanetary shock impacts, J. Geophys. Res. Space Physics, 116(A11), A11206, doi:10.1029/2011ja016736.SYM-H
    315. Zesta, E., et al. (2011), Ionospheric convection signatures of tail fast flows during substorms and Poleward Boundary Intensifications (PBI), Geophys. Res. Lett., 38(8), L08105, doi:10.1029/2011gl046758.AE
    316. Zhang, J.-C., L. M. Kistler, C. G. Mouikis, H. Matsui, B. Klecker, I. Dandouras, and M. W. Dunlop (2011), Shock-driven variation in ionospheric outflow during the 11 October 2001 moderate storm, J. Geophys. Res. Space Physics, 116, A00J18, doi:10.1029/2010ja015627.Dst
    317. Zhang, Q.-H., et al. (2011), The distribution of the ring current: Cluster observations, Ann. Geophys., 29(9), 1655, doi:10.5194/angeo-29-1655-2011.DstAE
    318. Zhang, X.-J., V. Angelopoulos, A. Runov, X.-Z. Zhou, J. Bonnell, J. P. McFadden, D. Larson, and U. Auster (2011), Current carriers near dipolarization fronts in the magnetotail: A THEMIS event study, J. Geophys. Res. Space Physics, 116, A00I20, doi:10.1029/2010ja015885.AE
    319. Zhang, Y. C., C. Shen, Z. X. Liu, Z. Y. Pu, I. Dandouras, A. Marchaudon, C. M. Carr, and E. Lucek (2011), Magnetopause response to variations in the solar wind: Conjunction observations between Cluster, TC-1, and SuperDARN, J. Geophys. Res. Space Physics, 116(A8), A08209, doi:10.1029/2011ja016462.Dst
    320. Zhou, X.-Y., W. Sun, A. J. Ridley, and S. B. Mende (2011), Joule heating associated with auroral electrojets during magnetospheric substorms, J. Geophys. Res. Space Physics, 116(A5), A00I28, doi:10.1029/2010ja015804.AESYM-H
    321. Zou, H., Q. G. Zong, G. K. Parks, Z. Y. Pu, H. F. Chen, and L. Xie (2011), Response of high-energy protons of the inner radiation belt to large magnetic storms, J. Geophys. Res. Space Physics, 116(A10), A10229, doi:10.1029/2011ja016733.Dst
    322. Zou, S., M. B. Moldwin, A. Coster, L. R. Lyons, and M. J. Nicolls (2011), GPS TEC observations of dynamics of the mid-latitude trough during substorms, Geophys. Res. Lett., 38(14), L14109, doi:10.1029/2011gl048178.AE
    323. Živković, T., and K. Rypdal (2011), Low-dimensionality and predictability of solar wind and global magnetosphere during magnetic storms, J. Geophys. Res. Space Physics, 116(A10), A10215, doi:10.1029/2011ja016547.AESYM-HSYM-D

    2010 269 papers↑ top

    1. Adewale, A. O., E. O. Oyeyemi, and U. D. Ofuase (2010), Comparison between observed ionospheric foF2 and IRI-2001 predictions over periods of severe geomagnetic activities at Grahamstown, South Africa, Adv. Space Res., 45(3), 368, doi:10.1016/j.asr.2009.09.026.Dst
    2. Aguado, J., C. Cid, E. Saiz, and Y. Cerrato (2010), Hyperbolic decay of the Dst Index during the recovery phase of intense geomagnetic storms, J. Geophys. Res. Space Physics, 115(A7), A07220, doi:10.1029/2009ja014658.Dst
    3. Akala, A. O., E. O. Somoye, and A. B. Adeloye (2010), The response of African equatorial foF2 to geomagnetic storms: Comparison between observations and IRI-2007 predictions, Adv. Space Res., 45(10), 1211, doi:10.1016/j.asr.2010.01.004.Dst
    4. Akasofu, S.-I., A. T. Y. Lui, and C.-I. Meng (2010), Importance of auroral features in the search for substorm onset processes, J. Geophys. Res. Space Physics, 115(A8), A08218, doi:10.1029/2009ja014960.AE
    5. Asano, Y., et al. (2010), Electron acceleration signatures in the magnetotail associated with substorms, J. Geophys. Res. Space Physics, 115(A5), A05215, doi:10.1029/2009ja014587.AE
    6. Asikainen, T., V. Maliniemi, and K. Mursula (2010), Modeling the contributions of ring, tail, and magnetopause currents to the corrected Dst index, J. Geophys. Res. Space Physics, 115(A12), A12203, doi:10.1029/2010ja015774.Dst
    7. Balan, N., K. Shiokawa, Y. Otsuka, T. Kikuchi, D. Vijaya Lekshmi, S. Kawamura, M. Yamamoto, and G. J. Bailey (2010), A physical mechanism of positive ionospheric storms at low latitudes and midlatitudes, J. Geophys. Res. Space Physics, 115(A2), A02304, doi:10.1029/2009ja014515.Dst
    8. Balikhin, M. A., R. J. Boynton, S. A. Billings, M. Gedalin, N. Ganushkina, D. Coca, and H. Wei (2010), Data based quest for solar wind-magnetosphere coupling function, Geophys. Res. Lett., 37, L24107, doi:10.1029/2010gl045733.Dst
    9. Bankov, L. G., M. Parrot, R. A. Heelis, J.-J. Berthelier, P. G. Marinov, and A. K. Vassileva (2010), DEMETER and DMSP satellite observations of the disturbed H+/O+ ratio caused by Earth’s seismic activity in the Sumatra area during December 2004, Adv. Space Res., 46(4), 419, doi:10.1016/j.asr.2009.07.032.DstAE
    10. Basu, S., S. Basu, E. MacKenzie, C. Bridgwood, C. E. Valladares, K. M. Groves, and C. Carrano (2010), Specification of the occurrence of equatorial ionospheric scintillations during the main phase of large magnetic storms within solar cycle 23, Radio Sci., 45(5), RS5009, doi:10.1029/2009rs004343.DstSYM-HSYM-D
    11. Bazell, D., E. C. Roelof, T. Sotirelis, P. C. Brandt, H. Nair, P. Valek, J. Goldstein, and D. McComas (2010), Comparison of TWINS images of low-altitude emission of energetic neutral atoms with DMSP precipitating ion fluxes, J. Geophys. Res. Space Physics, 115(A10), A10204, doi:10.1029/2010ja015644.SYM-H
    12. Benck, S., L. Mazzino, M. Cyamukungu, J. Cabrera, and V. Pierrard (2010), Low altitude energetic electron lifetimes after enhanced magnetic activity as deduced from SAC-C and DEMETER data, Ann. Geophys., 28(3), 849, doi:10.5194/angeo-28-849-2010.Dst
    13. Bisi, M. M., et al. (2010), From the Sun to the Earth: The 13 May 2005 Coronal Mass Ejection, Sol. Phys., 265(1-2), 49, doi:10.1007/s11207-010-9602-8.DstAESYM-H
    14. Blanchard, G. T., and K. B. Baker (2010), Analysis of the step response function relating the interplanetary electric field to the dayside magnetospheric reconnection potential, J. Geophys. Res. Space Physics, 115(A5), A05211, doi:10.1029/2009ja014681.AE
    15. Borovsky, J. E., and M. H. Denton (2010), Magnetic field at geosynchronous orbit during high-speed stream-driven storms: Connections to the solar wind, the plasma sheet, and the outer electron radiation belt, J. Geophys. Res. Space Physics, 115(A8), A08217, doi:10.1029/2009ja015116.Dst
    16. Borovsky, J. E., and M. H. Denton (2010), On the heating of the outer radiation belt to produce high fluxes of relativistic electrons: Measured heating rates at geosynchronous orbit for high-speed stream-driven storms, J. Geophys. Res. Space Physics, 115(A12), A12206, doi:10.1029/2010ja015342.Dst
    17. Bowman, G. G., and I. K. Mortimer (2010), The delayed occurrence of equatorial ionospheric F2 layer post-sunset height decreases following auroral-zone substorm onsets, J. Atmos. Sol.-Terr. Phys., 72(2-3), 234, doi:10.1016/j.jastp.2009.11.016.AE
    18. Brambles, O. J., W. Lotko, P. A. Damiano, B. Zhang, M. Wiltberger, and J. Lyon (2010), Effects of causally driven cusp O+ outflow on the storm time magnetosphere-ionosphere system using a multifluid global simulation, J. Geophys. Res. Space Physics, 115(A7), A00J04, doi:10.1029/2010ja015469.Dst
    19. Buresova, D., L.-A. McKinnell, T. Sindelarova, and B. A. De La Morena (2010), Evaluation of the STORM model storm-time corrections for middle latitude, Adv. Space Res., 46(8), 1039, doi:10.1016/j.asr.2010.06.007.Dst
    20. Burke, W. J., C. Y. Huang, D. R. Weimer, J. O. Wise, G. R. Wilson, C. S. Lin, and F. A. Marcos (2010), Energy and power requirements of the global thermosphere during the magnetic storm of November 10, 2004, J. Atmos. Sol.-Terr. Phys., 72(4), 309, doi:10.1016/j.jastp.2009.06.005.Dst
    21. Burke, W. J., L. C. Gentile, and M. P. Hagan (2010), Thermospheric heating by high-speed streams in the solar wind, J. Geophys. Res. Space Physics, 115(A6), A06318, doi:10.1029/2009ja014585.Dst
    22. Buzulukova, N., M.-C. Fok, A. Pulkkinen, M. Kuznetsova, T. E. Moore, A. Glocer, P. C. Brandt, G. Tóth, and L. Rastätter (2010), Dynamics of ring current and electric fields in the inner magnetosphere during disturbed periods: CRCM-BATS-R-US coupled model, J. Geophys. Res. Space Physics, 115(A5), A05210, doi:10.1029/2009ja014621.DstSYM-H
    23. Buzulukova, N., M.-C. Fok, J. Goldstein, P. Valek, D. J. McComas, and P. C. Brandt (2010), Ring current dynamics in moderate and strong storms: Comparative analysis of TWINS and IMAGE/HENA data with the Comprehensive Ring Current Model, J. Geophys. Res. Space Physics, 115(A12), A12234, doi:10.1029/2010ja015292.DstAESYM-HSYM-D
    24. Cai, L., S. Y. Ma, and Y. L. Zhou (2010), Prediction of SYM-H index during large storms by NARX neural network from IMF and solar wind data, Ann. Geophys., 28(2), 381, doi:10.5194/angeo-28-381-2010.DstSYM-H
    25. Cao, J.-B., et al. (2010), Geomagnetic signatures of current wedge produced by fast flows in a plasma sheet, J. Geophys. Res. Space Physics, 115(A8), A08205, doi:10.1029/2009ja014891.DstAE
    26. Cash, M. D., R. M. Winglee, and E. M. Harnett (2010), Storm time production of ring current ions: Variations in particle energization and injection with ionospheric source region, J. Geophys. Res. Space Physics, 115(A12), A00J12, doi:10.1029/2010ja015759.Dst
    27. Chakrabarty, D., R. Sekar, J. H. Sastri, B. M. Pathan, G. D. Reeves, K. Yumoto, and T. Kikuchi (2010), Evidence for OI 630.0 nm dayglow variations over low latitudes during onset of a substorm, J. Geophys. Res. Space Physics, 115(A10), A10316, doi:10.1029/2010ja015643.AESYM-HASY-HASY-D
    28. Chakraborty, S. K., and R. Hajra (2010), Variability of total electron content near the crest of the equatorial anomaly during moderate geomagnetic storms, J. Atmos. Sol.-Terr. Phys., 72(11-12), 900, doi:10.1016/j.jastp.2010.05.006.AEASY-H
    29. Chen, C., Z. S. Wu, Z. W. Xu, S. J. Sun, Z. H. Ding, and P. P. Ban (2010), Forecasting the local ionospheric foF2 parameter 1 hour ahead during disturbed geomagnetic conditions, J. Geophys. Res. Space Physics, 115(A11), A11315, doi:10.1029/2010ja015529.AE
    30. Cho, K.-S., S.-C. Bong, Y.-J. Moon, M. Dryer, S.-E. Lee, and K.-H. Kim (2010), An empirical relationship between coronal mass ejection initial speed and solar wind dynamic pressure, J. Geophys. Res. Space Physics, 115(A10), A10111, doi:10.1029/2009ja015139.Dst
    31. Chu, F., M. K. Hudson, P. Haines, and Y. Shprits (2010), Dynamic modeling of radiation belt electrons by radial diffusion simulation for a 2 month interval following the 24 March 1991 storm injection, J. Geophys. Res. Space Physics, 115(A3), A03210, doi:10.1029/2009ja014409.Dst
    32. Chuo, Y. J., C. C. Lee, and W. S. Chen (2010), Comparison of ionospheric equivalent slab thickness with bottomside digisonde profile over Wuhan, J. Atmos. Sol.-Terr. Phys., 72(5-6), 528, doi:10.1016/j.jastp.2010.02.003.Dst
    33. Clilverd, M. A., C. J. Rodger, T. Moffat-Griffin, E. Spanswick, P. Breen, F. W. Menk, R. S. Grew, K. Hayashi, and I. R. Mann (2010), Energetic outer radiation belt electron precipitation during recurrent solar activity, J. Geophys. Res. Space Physics, 115(A8), A08323, doi:10.1029/2009ja015204.Dst
    34. D'Amicis, R., R. Bruno, and B. Bavassano (2010), Geomagnetic activity driven by solar wind turbulence, Adv. Space Res., 46(4), 514, doi:10.1016/j.asr.2009.08.031.DstAE
    35. de Abreu, A. J., et al. (2010), Hemispheric asymmetries in the ionospheric response observed in the American sector during an intense geomagnetic storm, J. Geophys. Res. Space Physics, 115(A12), A12312, doi:10.1029/2010ja015661.DstAE
    36. de Abreu, A. J., Y. Sahai, P. R. Fagundes, F. Becker-Guedes, R. de Jesus, F. L. Guarnieri, and V. G. Pillat (2010), Response of the ionospheric F-region in the Brazilian sector during the super geomagnetic storm in April 2000 observed by GPS, Adv. Space Res., 45(11), 1322, doi:10.1016/j.asr.2010.02.003.Dst
    37. de Jesus, R., et al. (2010), Effects observed in the ionospheric F-region in the South American sector during the intense geomagnetic storm of 14 December 2006, Adv. Space Res., 46(7), 909, doi:10.1016/j.asr.2010.04.031.DstAE
    38. de Michelis, P., R. Tozzi, and G. Consolini (2010), Principal components' features of mid-latitude geomagnetic daily variation, Ann. Geophys., 28(12), 2213, doi:10.5194/angeo-28-2213-2010.Dst
    39. Denton, M. H., J. E. Borovsky, and T. E. Cayton (2010), A density-temperature description of the outer electron radiation belt during geomagnetic storms, J. Geophys. Res. Space Physics, 115(A1), A01208, doi:10.1029/2009ja014183.Dst
    40. Dias, V. H. A., and A. R. R. Papa (2010), Statistical properties of global geomagnetic indexes as a potential forecasting tool for strong perturbations, J. Atmos. Sol.-Terr. Phys., 72(1), 109, doi:10.1016/j.jastp.2009.10.015.DstSYM-HSYM-D
    41. Diego, P., M. Storini, and M. Laurenza (2010), Persistence in recurrent geomagnetic activity and its connection with Space Climate, J. Geophys. Res. Space Physics, 115(A6), A06103, doi:10.1029/2009ja014716.Dst
    42. Dmitriev, A. V., P. T. Jayachandran, and L.-C. Tsai (2010), Elliptical model of cutoff boundaries for the solar energetic particles measured by POES satellites in December 2006, J. Geophys. Res. Space Physics, 115(A12), A12244, doi:10.1029/2010ja015380.DstAE
    43. Du, A. M., W.-Y. Xu, and W. Sun (2010), Experimental evidence of direct penetration of upstream ULF waves from the solar wind into the magnetosphere during the strong magnetic storm of November 9, 2004, Planet. Space Sci., 58(7-8), 1040, doi:10.1016/j.pss.2010.04.001.SYM-H
    44. Du, D., W. Y. Xu, M. X. Zhao, B. Chen, J. Y. Lu, and G. L. Yang (2010), A sensitive geomagnetic activity index for space weather operation, Space Weather, 8(12), S12006, doi:10.1029/2010sw000609.DstAE
    45. Dubyagin, S., V. Sergeev, S. Apatenkov, V. Angelopoulos, R. Nakamura, J. McFadden, D. Larson, and J. Bonnell (2010), Pressure and entropy changes in the flow-braking region during magnetic field dipolarization, J. Geophys. Res. Space Physics, 115(A10), A10225, doi:10.1029/2010ja015625.AE
    46. Ebihara, Y., T. Sakanoi, K. Asamura, M. Hirahara, and M. F. Thomsen (2010), Reimei observation of highly structured auroras caused by nonaccelerated electrons, J. Geophys. Res. Space Physics, 115(A8), A08320, doi:10.1029/2009ja015009.Dst
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    230. Tu, W., R. Selesnick, X. Li, and M. Looper (2010), Quantification of the precipitation loss of radiation belt electrons observed by SAMPEX, J. Geophys. Res. Space Physics, 115(A7), A07210, doi:10.1029/2009ja014949.Dst
    231. Turner, D. L., X. Li, G. D. Reeves, and H. J. Singer (2010), On phase space density radial gradients of Earth's outer-belt electrons prior to sudden solar wind pressure enhancements: Results from distinctive events and a superposed epoch analysis, J. Geophys. Res. Space Physics, 115(A1), A01205, doi:10.1029/2009ja014423.DstAE
    232. Usanova, M. E., et al. (2010), Conjugate ground and multisatellite observations of compression-related EMIC Pc1 waves and associated proton precipitation, J. Geophys. Res. Space Physics, 115(A7), A07208, doi:10.1029/2009ja014935.DstAE
    233. Valek, P., P. C. Brandt, N. Buzulukova, M.-C. Fok, J. Goldstein, D. J. McComas, J. D. Perez, E. Roelof, and R. Skoug (2010), Evolution of low-altitude and ring current ENA emissions from a moderate magnetospheric storm: Continuous and simultaneous TWINS observations, J. Geophys. Res. Space Physics, 115(A11), A11209, doi:10.1029/2010ja015429.DstAE
    234. VallièRes-Nollet, M.-A., P. Charbonneau, V. Uritsky, E. Donovan, and W. Liu (2010), Dual scaling for self-organized critical models of the magnetosphere, J. Geophys. Res. Space Physics, 115(A12), A12217, doi:10.1029/2010ja015641.AESYM-H
    235. Verbanac, G., B. Vršnak, M. Temmer, M. Mandea, and M. Korte (2010), Four decades of geomagnetic and solar activity: 1960-2001, J. Atmos. Sol.-Terr. Phys., 72(7), 607, doi:10.1016/j.jastp.2010.02.017.Dst
    236. Villante, U., P. Francia, and M. Vellante (2010), Long period magnetospheric oscillations at discrete frequencies: The results of a multi-station analysis, Adv. Space Res., 46(4), 460, doi:10.1016/j.asr.2009.07.030.AE
    237. Voiculescu, M., T. Nygrén, A. Aikio, and R. Kuula (2010), An olden but golden EISCAT observation of a quiet-time ionospheric trough, J. Geophys. Res. Space Physics, 115(A10), A10315, doi:10.1029/2010ja015557.AE
    238. Walsh, A. P., et al. (2010), Comprehensive ground-based and in situ observations of substorm expansion phase onset, J. Geophys. Res. Space Physics, 115, A00I13, doi:10.1029/2010ja015748.Dst
    239. Wan, Y., S. Sazykin, R. A. Wolf, and M. K. Öztürk (2010), Drift shell bifurcation near the dayside magnetopause in realistic magnetospheric magnetic fields, J. Geophys. Res. Space Physics, 115(A10), A10205, doi:10.1029/2010ja015395.Dst
    240. Wang, C., H. Li, J. D. Richardson, and J. R. Kan (2010), Interplanetary shock characteristics and associated geosynchronous magnetic field variations estimated from sudden impulses observed on the ground, J. Geophys. Res. Space Physics, 115(A9), A09215, doi:10.1029/2009ja014833.DstSYM-H
    241. Wang, C., T. R. Sun, X. C. Guo, and J. D. Richardson (2010), Case study of nightside magnetospheric magnetic field response to interplanetary shocks, J. Geophys. Res. Space Physics, 115(A10), A10247, doi:10.1029/2010ja015451.SYM-H
    242. Wang, L., et al. (2010), Energetic, ∼5-90 keV neutral atom imaging of a weak substorm with STEREO/STE, Geophys. Res. Lett., 37(8), L08107, doi:10.1029/2010gl042964.DstAE
    243. Wang, W., J. Lei, A. G. Burns, S. C. Solomon, M. Wiltberger, J. Xu, Y. Zhang, L. Paxton, and A. Coster (2010), Ionospheric response to the initial phase of geomagnetic storms: Common features, J. Geophys. Res. Space Physics, 115(A7), A07321, doi:10.1029/2009ja014461.Dst
    244. Wanliss, J., and V. Uritsky (2010), Understanding bursty behavior in midlatitude geomagnetic activity, J. Geophys. Res. Space Physics, 115(A3), A03215, doi:10.1029/2009ja014642.SYM-H
    245. Wawrzynczak, A., and M. V. Alania (2010), Modeling and data analysis of a Forbush decrease, Adv. Space Res., 45(5), 622, doi:10.1016/j.asr.2009.09.005.Dst
    246. Wei, Y., Z. Pu, M. Hong, Q. Zong, J. Liu, J. Guo, A. Ridley, and W. Wan (2010), Long-lasting goodshielding at the equatorial ionosphere, J. Geophys. Res. Space Physics, 115(A12), A12256, doi:10.1029/2010ja015786.DstSYM-H
    247. Weigel, R. S. (2010), Solar wind density influence on geomagnetic storm intensity, J. Geophys. Res. Space Physics, 115(A9), A09201, doi:10.1029/2009ja015062.Dst
    248. Weimer, D. R., C. R. Clauer, M. J. Engebretson, T. L. Hansen, H. Gleisner, I. Mann, and K. Yumoto (2010), Statistical maps of geomagnetic perturbations as a function of the interplanetary magnetic field, J. Geophys. Res. Space Physics, 115(A10), A10320, doi:10.1029/2010ja015540.AE
    249. Weygand, J. M., W. H. Matthaeus, M. El-Alaoui, S. Dasso, and M. G. Kivelson (2010), Anisotropy of the Taylor scale and the correlation scale in plasma sheet magnetic field fluctuations as a function of auroral electrojet activity, J. Geophys. Res. Space Physics, 115(A12), A12250, doi:10.1029/2010ja015499.AE
    250. Wiltberger, M., W. Lotko, J. G. Lyon, P. Damiano, and V. Merkin (2010), Influence of cusp O+ outflow on magnetotail dynamics in a multifluid MHD model of the magnetosphere, J. Geophys. Res. Space Physics, 115(12), A00J05, doi:10.1029/2010ja015579.Dst
    251. Woodfield, E. E., J. A. Wild, A. J. Kavanagh, A. Senior, and S. E. Milan (2010), Combining incoherent scatter radar data and IRI-2007 to monitor the open-closed field line boundary during substorms, J. Geophys. Res. Space Physics, 115, A00I15, doi:10.1029/2010ja015751.AESYM-H
    252. Yang, B., Q.-G. Zong, Y. F. Wang, S. Y. Fu, P. Song, H. S. Fu, A. Korth, T. Tian, and H. Reme (2010), Cluster observations of simultaneous resonant interactions of ULF waves with energetic electrons and thermal ion species in the inner magnetosphere, J. Geophys. Res. Space Physics, 115(A2), A02214, doi:10.1029/2009ja014542.Dst
    253. Yang, J., F. R. Toffoletto, and Y. Song (2010), Role of depleted flux tubes in steady magnetospheric convection: Results of RCM-E simulations, J. Geophys. Res. Space Physics, 115, A00I11, doi:10.1029/2010ja015731.DstAE
    254. Yeoman, T. K., D. Y. Klimushkin, and P. N. Mager (2010), Intermediate-m ULF waves generated by substorm injection: a case study, Ann. Geophys., 28(8), 1499, doi:10.5194/angeo-28-1499-2010.AE
    255. Yermolaev, Y. I., N. S. Nikolaeva, I. G. Lodkina, and M. Y. Yermolaev (2010), Specific interplanetary conditions for CIR-, Sheath-, and ICME-induced geomagnetic storms obtained by double superposed epoch analysis, Ann. Geophys., 28(12), 2177, doi:10.5194/angeo-28-2177-2010.DstAE
    256. Yoshikawa, I., et al. (2010), Plasmaspheric EUV images seen from lunar orbit: Initial results of the extreme ultraviolet telescope on board the Kaguya spacecraft, J. Geophys. Res. Space Physics, 115(A4), A04217, doi:10.1029/2009ja014978.DstAE
    257. Yu, X. X., H. Lu, G. M. Le, and F. Shi (2010), Influence of Magnetic Clouds on Variations of Cosmic Rays in November 2004, Sol. Phys., 263(1-2), 223, doi:10.1007/s11207-010-9522-7.Dst
    258. Yu, Y., A. J. Ridley, D. T. Welling, and G. Tóth (2010), Including gap region field-aligned currents and magnetospheric currents in the MHD calculation of ground-based magnetic field perturbations, J. Geophys. Res. Space Physics, 115(A8), A08207, doi:10.1029/2009ja014869.SYM-H
    259. Yu, Z.-G., V. Anh, Y. Wang, D. Mao, and J. Wanliss (2010), Modeling and simulation of the horizontal component of the geomagnetic field by fractional stochastic differential equations in conjunction with empirical mode decomposition, J. Geophys. Res. Space Physics, 115(A10), A10219, doi:10.1029/2009ja015206.AE
    260. Yue, C., et al. (2010), Geomagnetic activity triggered by interplanetary shocks, J. Geophys. Res. Space Physics, 115(A1), A00I05, doi:10.1029/2010ja015356.AE
    261. Zaharia, S., V. K. Jordanova, D. Welling, and G. Tóth (2010), Self-consistent inner magnetosphere simulation driven by a global MHD model, J. Geophys. Res. Space Physics, 115(A12), A12228, doi:10.1029/2010ja015915.DstSYM-H
    262. Zaka, K. Z., et al. (2010), Simulation of electric field and current during the 11 June 1993 disturbance dynamo event: Comparison with the observations, J. Geophys. Res. Space Physics, 115(A11), A11307, doi:10.1029/2010ja015417.DstAE
    263. Zhang, L. Q., Z. X. Liu, Z. W. Ma, W. Baumjohann, Z. Y. Pu, M. W. Dunlop, H. Reme, and J. Y. Wang (2010), X line distribution determined from earthward and tailward convective bursty flows in the central plasma sheet, J. Geophys. Res. Space Physics, 115(A6), A06218, doi:10.1029/2009ja014429.AE
    264. Zhang, Q.-H., et al. (2010), Simultaneous observations of reconnection pulses at Cluster and their effects on the cusp aurora observed at the Chinese Yellow River Station, J. Geophys. Res. Space Physics, 115(A10), A10237, doi:10.1029/2010ja015526.Dst
    265. Zhang, Q.-H., M. W. Dunlop, R. Holme, and E. E. Woodfield (2010), Comparison of eight years magnetic field data from Cluster with Tsyganenko models in the inner magnetosphere, Ann. Geophys., 28(1), 309, doi:10.5194/angeo-28-309-2010.DstSYM-H
    266. Zheng, Y., A. T. Y. Lui, and M.-C. Fok (2010), Effects of plasma sheet properties on storm-time ring current, J. Geophys. Res. Space Physics, 115(A8), A08220, doi:10.1029/2009ja014806.Dst
    267. Zong, Q.-G., B. W. Reinisch, P. Song, Y. Wei, and I. A. Galkin (2010), Dayside ionospheric response to the intense interplanetary shocks-solar wind discontinuities: Observations from the digisonde global ionospheric radio observatory, J. Geophys. Res. Space Physics, 115(A6), A06304, doi:10.1029/2009ja014796.Dst
    268. Zou, S., et al. (2010), Identification of substorm onset location and preonset sequence using Reimei, THEMIS GBO, PFISR, and Geotail, J. Geophys. Res. Space Physics, 115(A12), A12309, doi:10.1029/2010ja015520.AE
    269. Zuo, P. B., F. S. Wei, X. S. Feng, X. J. Xu, and W. B. Song (2010), Magnetic cloud boundary layer of 9 November 2004 and its associated space weather effects, J. Geophys. Res. Space Physics, 115(A10), A10102, doi:10.1029/2009ja014815.DstAE

    2009 259 papers↑ top

    1. Abalde, J. R., Y. Sahai, P. R. Fagundes, F. Becker-Guedes, J. A. Bittencourt, V. G. Pillat, W. L. C. Lima, C. M. N. Candido, and T. F. de Freitas (2009), Day-to-day variability in the development of plasma bubbles associated with geomagnetic disturbances, J. Geophys. Res. Space Physics, 114(A4), A04304, doi:10.1029/2008ja013788.Dst
    2. Abdu, M. A., E. A. Kherani, I. S. Batista, and J. H. A. Sobral (2009), Equatorial evening prereversal vertical drift and spread F suppression by disturbance penetration electric fields, Geophys. Res. Lett., 36(19), L19103, doi:10.1029/2009gl039919.AE
    3. Abel, G. A., M. P. Freeman, and G. Chisham (2009), IMF clock angle control of multifractality in ionospheric velocity fluctuations, Geophys. Res. Lett., 36(19), L19102, doi:10.1029/2009gl040336.AE
    4. Ahluwalia, H. S., R. C. Ygbuhay, and M. L. Duldig (2009), Two intense Forbush decreases of solar activity cycle 22, Adv. Space Res., 44(1), 58, doi:10.1016/j.asr.2009.04.004.Dst
    5. Aikio, A. T., and A. Selkälä (2009), Statistical properties of Joule heating rate, electric field and conductances at high latitudes, Ann. Geophys., 27(7), 2661, doi:10.5194/angeo-27-2661-2009.AE
    6. Albert, J. M., N. P. Meredith, and R. B. Horne (2009), Three-dimensional diffusion simulation of outer radiation belt electrons during the 9 October 1990 magnetic storm, J. Geophys. Res. Space Physics, 114(A9), A09214, doi:10.1029/2009ja014336.DstAE
    7. Antonova, E. E., I. A. Kornilov, T. A. Kornilova, O. I. Kornilov, and M. V. Stepanova (2009), Features of auroral breakup obtained using data of ground-based television observations: case study, Ann. Geophys., 27(4), 1413, doi:10.5194/angeo-27-1413-2009.DstAE
    8. Asai, A., K. Shibata, T. T. Ishii, M. Oka, R. Kataoka, K. Fujiki, and N. Gopalswamy (2009), Evolution of the anemone AR NOAA 10798 and the related geo-effective flares and CMEs, J. Geophys. Res. Space Physics, 114(A12), A00A21, doi:10.1029/2008ja013291.Dst
    9. Ashour-Abdalla, M., J.-M. Bosqued, M. El-Alaoui, V. Peroomian, M. Zhou, R. Richard, R. Walker, A. Runov, and V. Angelopoulos (2009), A simulation study of particle energization observed by THEMIS spacecraft during a substorm, J. Geophys. Res. Space Physics, 114(A9), A09204, doi:10.1029/2009ja014126.Dst
    10. Astafyeva, E. (2009), Effects of strong IMF Bz southward events on the equatorial and mid-latitude ionosphere, Ann. Geophys., 27(3), 1175, doi:10.5194/angeo-27-1175-2009.DstAE
    11. Astafyeva, E. I. (2009), Dayside ionospheric uplift during strong geomagnetic storms as detected by the CHAMP, SAC-C, TOPEX and Jason-1 satellites, Adv. Space Res., 43(11), 1749, doi:10.1016/j.asr.2008.09.036.Dst
    12. Aveiro, H. C., C. M. Denardini, and M. A. Abdu (2009), Signatures of 2-day wave in the E-region electric fields and their relationship to winds and ionospheric currents, Ann. Geophys., 27(2), 631, doi:10.5194/angeo-27-631-2009.DstAE
    13. Badman, S. V., D. M. Wright, L. B. N. Clausen, R. C. Fear, T. R. Robinson, and T. K. Yeoman (2009), Cluster spacecraft observations of a ULF wave enhanced by Space Plasma Exploration by Active Radar (SPEAR), Ann. Geophys., 27(9), 3591, doi:10.5194/angeo-27-3591-2009.Dst
    14. Bagiya, M. S., H. P. Joshi, K. N. Iyer, M. Aggarwal, S. Ravindran, and B. M. Pathan (2009), TEC variations during low solar activity period (2005-2007) near the Equatorial Ionospheric Anomaly Crest region in India, Ann. Geophys., 27(3), 1047, doi:10.5194/angeo-27-1047-2009.Dst
    15. Baker, D. N., J. P. McCollough, R. L. McPherron, S. M. Ryan, J. C. Westfall, J. M. Russell, and S. M. Bailey (2009), Aeronomy of Ice in the Mesosphere receiver/communication lock analysis: When bad space weather is good, Space Weather, 7(9), 09001, doi:10.1029/2009sw000475.DstAE
    16. Balasis, G., I. A. Daglis, C. Papadimitriou, M. Kalimeri, A. Anastasiadis, and K. Eftaxias (2009), Investigating dynamical complexity in the magnetosphere using various entropy measures, J. Geophys. Res. Space Physics, 114(A9), A00D06, doi:10.1029/2008ja014035.Dst
    17. Belehaki, A., I. Stanislawska, and J. Lilensten (2009), An Overview of Ionosphere—Thermosphere Models Available for Space Weather Purposes, Space Sci. Rev., 147(3-4), 271, doi:10.1007/s11214-009-9510-0.Dst
    18. Bhaneja, P., G. D. Earle, R. L. Bishop, T. W. Bullett, J. Mabie, and R. Redmon (2009), A statistical study of midlatitude spread F at Wallops Island, Virginia, J. Geophys. Res. Space Physics, 114(A4), A04301, doi:10.1029/2008ja013212.AE
    19. Birch, M. J., J. K. Hargreaves, B. J. I. Bromage, and D. S. Evans (2009), Effects of high-speed solar wind on energetic electron activity in the auroral regions during July 1-2, 2005, J. Atmos. Sol.-Terr. Phys., 71(10-11), 1190, doi:10.1016/j.jastp.2009.02.008.AESYM-H
    20. Bisi, M. M., B. V. Jackson, A. Buffington, J. M. Clover, P. P. Hick, and M. Tokumaru (2009), Low-Resolution STELab IPS 3D Reconstructions of the Whole Heliosphere Interval and Comparison with in-Ecliptic Solar Wind Measurements from STEREO and Wind Instrumentation, Sol. Phys., 256(1-2), 201, doi:10.1007/s11207-009-9350-9.Dst
    21. Blagoveshchensky, D. V., M. Y. Andreyev, V. S. Mingalev, G. I. Mingaleva, and A. S. Kalishin (2009), Physical and model interpretation of HF radio propagation on the St. Petersburg-Longyearbyen (Svalbard) path, Adv. Space Res., 43(12), 1974, doi:10.1016/j.asr.2009.01.030.AE
    22. Blum, L. W., E. A. MacDonald, S. P. Gary, M. F. Thomsen, and H. E. Spence (2009), Ion observations from geosynchronous orbit as a proxy for ion cyclotron wave growth during storm times, J. Geophys. Res. Space Physics, 114(A10), A10214, doi:10.1029/2009ja014396.Dst
    23. Bolzan, M. J. A., F. Becker-Guedes, P. R. Fagundes, Y. Sahai, V. G. Pillat, and C. M. Wrasse (2009), Statistical analysis of the total electron content observed at 23°S in the Brazilian sector, Adv. Space Res., 44(3), 385, doi:10.1016/j.asr.2009.03.012.AE
    24. Bolzan, M. J. A., R. R. Rosa, and Y. Sahai (2009), Multifractal analysis of low-latitude geomagnetic fluctuations, Ann. Geophys., 27(2), 569, doi:10.5194/angeo-27-569-2009.Dst
    25. Borovsky, J. E., and M. H. Denton (2009), Relativistic-electron dropouts and recovery: A superposed epoch study of the magnetosphere and the solar wind, J. Geophys. Res. Space Physics, 114(A2), A02201, doi:10.1029/2008ja013128.Dst
    26. Borries, C., N. Jakowski, and V. Wilken (2009), Storm induced large scale TIDs observed in GPS derived TEC, Ann. Geophys., 27(4), 1605, doi:10.5194/angeo-27-1605-2009.DstAE
    27. Bosqued, J. M., M. Ashour-Abdalla, T. Umeda, M. El Alaoui, V. Peroomian, H. U. Frey, A. Marchaudon, and H. Laakso (2009), Cluster observations and numerical modeling of energy-dispersed ionospheric H+ ions bouncing at the plasma sheet boundary layer, J. Geophys. Res. Space Physics, 114(A4), A04216, doi:10.1029/2008ja013562.AE
    28. Brogl, S., R. E. Lopez, M. Wiltberger, and H. K. Rassoul (2009), Studies of magnetotail dynamics and energy evolution during substorms using MHD simulations, Ann. Geophys., 27(4), 1717, doi:10.5194/angeo-27-1717-2009.AE
    29. Burke, W. J., C. S. Lin, M. P. Hagan, C. Y. Huang, D. R. Weimer, J. O. Wise, L. C. Gentile, and F. A. Marcos (2009), Storm time global thermosphere: A driven-dissipative thermodynamic system, J. Geophys. Res. Space Physics, 114(A6), A06306, doi:10.1029/2008ja013848.Dst
    30. Burke, W. J., C. Y. Huang, and R. D. Sharma (2009), Stormtime dynamics of the global thermosphere and equatorial ionosphere, Ann. Geophys., 27(5), 2035, doi:10.5194/angeo-27-2035-2009.Dst
    31. Burke, W. J., O. de La Beaujardière, L. C. Gentile, D. E. Hunton, R. F. Pfaff, P. A. Roddy, Y.-J. Su, and G. R. Wilson (2009), C/NOFS observations of plasma density and electric field irregularities at post-midnight local times, Geophys. Res. Lett., 36, L00C09, doi:10.1029/2009gl038879.AE
    32. Campbell, W. H. (2009), Natural magnetic disturbance fields, not precursors, preceding the Loma Prieta earthquake, J. Geophys. Res. Space Physics, 114(A5), A05307, doi:10.1029/2008ja013932.Dst
    33. Caroubalos, C., P. Preka-Papadema, H. Mavromichalaki, X. Moussas, A. Papaioannou, E. Mitsakou, and A. Hillaris (2009), Space storm measurements of the July 2005 solar extreme events from the low corona to the Earth, Adv. Space Res., 43(4), 600, doi:10.1016/j.asr.2008.09.019.Dst
    34. Carter, B. A., and R. A. Makarevich (2009), E-region decameter-scale plasma waves observed by the dual TIGER HF radars, Ann. Geophys., 27(1), 261, doi:10.5194/angeo-27-261-2009.Dst
    35. Charan Dwivedi, V., D. P. Tiwari, and S. P. Agrawal (2009), Study of the long-term variability of interplanetary plasma and fields as a link for solar-terrestrial relationships, J. Geophys. Res. Space Physics, 114(A5), A05108, doi:10.1029/2009ja014171.Dst
    36. Chen, H., Y. Jiang, and S. Ma (2009), An EUV Jet and Hα Filament Eruption Associated with Flux Cancelation in a Decaying Active Region, Sol. Phys., 255(1), 79, doi:10.1007/s11207-008-9298-1.Dst
    37. Cheng, C.-C., C. T. Russell, V. Angelopoulos, I. Mann, K. H. Glassmeier, U. Auster, and W. Baumjohann (2009), THEMIS observations of consecutive bursts of Pi2 pulsations: The 20 April 2007 event, J. Geophys. Res. Space Physics, 114(A10), A00C19, doi:10.1029/2008ja013538.AE
    38. Chi, P. J., C. T. Russell, and S. Ohtani (2009), Substorm onset timing via traveltime magnetoseismology, Geophys. Res. Lett., 36(8), L08107, doi:10.1029/2008gl036574.AE
    39. Chilingarian, A., and N. Bostanjyan (2009), Cosmic ray intensity increases detected by Aragats Space Environmental Center monitors during the 23rd solar activity cycle in correlation with geomagnetic storms, J. Geophys. Res. Space Physics, 114(A9), A09107, doi:10.1029/2009ja014346.Dst
    40. Choi, Y., Y.-J. Moon, S. Choi, J.-H. Baek, S. S. Kim, K.-S. Cho, and G. S. Choe (2009), Statistical Analysis of the Relationships among Coronal Holes, Corotating Interaction Regions, and Geomagnetic Storms, Sol. Phys., 254(2), 311, doi:10.1007/s11207-008-9296-3.Dst
    41. Chowdhury, P., M. Khan, and P. Ray (2009), Intermediate-term periodicities in relativistic solar electron fluences during solar cycles 22 and 23, Adv. Space Res., 43(2), 297, doi:10.1016/j.asr.2008.06.008.Dst
    42. Cliver, E. W., K. S. Balasubramaniam, N. V. Nitta, and X. Li (2009), Great geomagnetic storm of 9 November 1991: Association with a disappearing solar filament, J. Geophys. Res. Space Physics, 114(46), A00A20, doi:10.1029/2008ja013232.Dst
    43. Coley, W. R., and R. A. Heelis (2009), Stormtime measurements of topside ionospheric upflow from Defense Meteorological Satellite Program, J. Geophys. Res. Space Physics, 114(A10), A10305, doi:10.1029/2009ja014350.Dst
    44. D'Amicis, R., R. Bruno, and B. Bavassano (2009), Alfvénic turbulence in high speed solar wind streams as a driver for auroral activity, J. Atmos. Sol.-Terr. Phys., 71(10-11), 1014, doi:10.1016/j.jastp.2008.05.002.AE
    45. Dahlgren, H., N. Ivchenko, B. S. Lanchester, M. Ashrafi, D. Whiter, G. Marklund, and J. Sullivan (2009), First direct optical observations of plasma flows using afterglow of O in discrete aurora, J. Atmos. Sol.-Terr. Phys., 71(2), 228, doi:10.1016/j.jastp.2008.11.015.AE
    46. Dandouras, I. S., H. Rème, J. Cao, and P. Escoubet (2009), Magnetosphere response to the 2005 and 2006 extreme solar events as observed by the Cluster and Double Star spacecraft, Adv. Space Res., 43(4), 618, doi:10.1016/j.asr.2008.10.015.Dst
    47. Dandouras, I., J. Cao, and C. Vallat (2009), Energetic ion dynamics of the inner magnetosphere revealed in coordinated Cluster-Double Star observations, J. Geophys. Res. Space Physics, 114(A1), A01S90, doi:10.1029/2007ja012757.DstSYM-H
    48. Darrouzet, F., et al. (2009), Plasmaspheric Density Structures and Dynamics: Properties Observed by the CLUSTER and IMAGE Missions, Space Sci. Rev., 145(1-2), 55, doi:10.1007/s11214-008-9438-9.Dst
    49. Dashora, N., S. Sharma, R. S. Dabas, S. Alex, and R. Pandey (2009), Large enhancements in low latitude total electron content during 15 May 2005 geomagnetic storm in Indian zone, Ann. Geophys., 27(5), 1803, doi:10.5194/angeo-27-1803-2009.DstSYM-H
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    232. Wang, C., J. B. Liu, H. Li, Z. H. Huang, J. D. Richardson, and J. R. Kan (2009), Geospace magnetic field responses to interplanetary shocks, J. Geophys. Res. Space Physics, 114(A5), A05211, doi:10.1029/2008ja013794.DstSYM-H
    233. Wang, C.-P., L. R. Lyons, R. A. Wolf, T. Nagai, J. M. Weygand, and A. T. Y. Lui (2009), Plasma sheet P?5/3 and n? and associated plasma and energy transport for different convection strengths and AE levels, J. Geophys. Res. Space Physics, 114(A9), A00D02, doi:10.1029/2008ja013849.AE
    234. Watermann, J., et al. (2009), Models of Solar Wind Structures and Their Interaction with the Earth's Space Environment, Space Sci. Rev., 147(3-4), 233, doi:10.1007/s11214-009-9494-9.DstAE
    235. Watermann, J., R. Vainio, J. Lilensten, A. Belehaki, and M. Messerotti (2009), The State of Space Weather Scientific Modeling—An Introduction, Space Sci. Rev., 147(3-4), 111, doi:10.1007/s11214-009-9576-8.DstAE
    236. Webb, D. F., T. A. Howard, C. D. Fry, T. A. Kuchar, D. R. Mizuno, J. C. Johnston, and B. V. Jackson (2009), Studying geoeffective interplanetary coronal mass ejections between the Sun and Earth: Space weather implications of Solar Mass Ejection Imager observations, Space Weather, 7(5), S05002, doi:10.1029/2008sw000409.Dst
    237. Wei, Y., et al. (2009), Westward ionospheric electric field perturbations on the dayside associated with substorm processes, J. Geophys. Res. Space Physics, 114(A12), A12209, doi:10.1029/2009ja014445.DstAESYM-HASY-HASY-D
    238. Wik, M., R. Pirjola, H. Lundstedt, A. Viljanen, P. Wintoft, and A. Pulkkinen (2009), Space weather events in July 1982 and October 2003 and the effects of geomagnetically induced currents on Swedish technical systems, Ann. Geophys., 27(4), 1775, doi:10.5194/angeo-27-1775-2009.DstAE
    239. Wild, J. A., E. E. Woodfield, and S. K. Morley (2009), On the triggering of auroral substorms by northward turnings of the interplanetary magnetic field, Ann. Geophys., 27(9), 3559, doi:10.5194/angeo-27-3559-2009.Dst
    240. Willis, D. M., R. Henwood, and F. R. Stephenson (2009), The presence of large sunspots near the central solar meridian at the times of major geomagnetic storms, Ann. Geophys., 27(1), 185, doi:10.5194/angeo-27-185-2009.Dst
    241. Xing, X., L. R. Lyons, V. Angelopoulos, D. Larson, J. McFadden, C. Carlson, A. Runov, and U. Auster (2009), Azimuthal plasma pressure gradient in quiet time plasma sheet, Geophys. Res. Lett., 36(14), L14105, doi:10.1029/2009gl038881.Dst
    242. Xiong, M., H. Zheng, and S. Wang (2009), Magnetohydrodynamic simulation of the interaction between two interplanetary magnetic clouds and its consequent geoeffectiveness: 2. Oblique collision, J. Geophys. Res. Space Physics, 114(A11), A11101, doi:10.1029/2009ja014079.Dst
    243. Xu, D., T. Chen, X. X. Zhang, and Z. Liu (2009), Statistical relationship between solar wind conditions and geomagnetic storms in 1998-2008, Planet. Space Sci., 57(12), 1500, doi:10.1016/j.pss.2009.07.015.Dst
    244. Yakovchouk, O. S., I. S. Veselovsky, and K. Mursula (2009), Statistical properties of the most powerful solar and heliospheric disturbances, Adv. Space Res., 43(4), 634, doi:10.1016/j.asr.2008.09.025.Dst
    245. Yamauchi, M., et al. (2009), Magnetospheric solitary structure maintained by 3000 km/s ions as a cause of westward moving auroral bulge at 19 MLT, Ann. Geophys., 27(7), 2947, doi:10.5194/angeo-27-2947-2009.DstAESYM-HASY-D
    246. Yamauchi, M., Y. Ebihara, I. Dandouras, and H. Rème (2009), Dual source populations of substorm-associated ring current ions, Ann. Geophys., 27(4), 1431, doi:10.5194/angeo-27-1431-2009.AE
    247. Yoshida, A. (2009), Physical meaning of the equinoctial effect for semi-annual variation in geomagnetic activity, Ann. Geophys., 27(5), 1909, doi:10.5194/angeo-27-1909-2009.DstAE
    248. Yuan, Z., B. Ning, and X. Deng (2009), Effects of TADs on the F region of the mid-latitude ionosphere during an intense geomagnetic storm, Adv. Space Res., 44(9), 1013, doi:10.1016/j.asr.2009.05.022.DstAE
    249. Yuan, Z.-G., X.-H. Deng, S.-R. Zhang, W.-X. Wan, and B. W. Reinisch (2009), F region behavior in the SED plume during a geomagnetic superstorm: A case study, J. Geophys. Res. Space Physics, 114(A8), A08303, doi:10.1029/2008ja013841.Dst
    250. Zaka, K. Z., A. T. Kobea, P. Assamoi, O. K. Obrou, V. Doumbia, K. Boka, B. J.-P. Adohi, and N. M. Mene (2009), Latitudinal profile of the ionospheric disturbance dynamo magnetic signature: comparison with the DP2 magnetic disturbance, Ann. Geophys., 27(9), 3523, doi:10.5194/angeo-27-3523-2009.DstAE
    251. Zhang, L. Q., et al. (2009), Convective bursty flows in the near-Earth magnetotail inside 13 RE, J. Geophys. Res. Space Physics, 114(A2), A02202, doi:10.1029/2008ja013125.AE
    252. Zhang, W., D. H. Zhang, and Z. Xiao (2009), The influence of geomagnetic storms on the estimation of GPS instrumental biases, Ann. Geophys., 27(4), 1613, doi:10.5194/angeo-27-1613-2009.DstAESYM-H
    253. Zhang, Y., L. J. Paxton, P. T. Newell, and C.-I. Meng (2009), Does the polar cap disappear under an extended strong northward IMF?, J. Atmos. Sol.-Terr. Phys., 71(17-18), 2006, doi:10.1016/j.jastp.2009.09.005.Dst
    254. Zhao, B., W. Wan, L. Liu, K. Igarashi, K. Yumoto, and B. Ning (2009), Ionospheric response to the geomagnetic storm on 13-17 April 2006 in the West Pacific region, J. Atmos. Sol.-Terr. Phys., 71(1), 88, doi:10.1016/j.jastp.2008.09.029.Dst
    255. Zhou, M., M. Ashour-Abdalla, X. Deng, D. Schriver, M. El-Alaoui, and Y. Pang (2009), THEMIS observation of multiple dipolarization fronts and associated wave characteristics in the near-Earth magnetotail, Geophys. Res. Lett., 36(20), L20107, doi:10.1029/2009gl040663.AE
    256. Zhou, Y. L., S. Y. Ma, H. Lühr, C. Xiong, and C. Reigber (2009), An empirical relation to correct storm-time thermospheric mass density modeled by NRLMSISE-00 with CHAMP satellite air drag data, Adv. Space Res., 43(5), 819, doi:10.1016/j.asr.2008.06.016.Dst
    257. Zong, Q.-G., et al. (2009), Energetic electron response to ULF waves induced by interplanetary shocks in the outer radiation belt, J. Geophys. Res. Space Physics, 114(A10), A10204, doi:10.1029/2009ja014393.Dst
    258. Zong, Q.-G., et al. (2009), Vortex-like plasma flow structures observed by Cluster at the boundary of the outer radiation belt and ring current: A link between the inner and outer magnetosphere, J. Geophys. Res. Space Physics, 114(A10), A10211, doi:10.1029/2009ja014388.Dst
    259. Østgaard, N., K. Snekvik, A. L. Borg, A. Åsnes, A. Pedersen, M. Øieroset, T. Phan, and S. E. Haaland (2009), Can magnetotail reconnection produce the auroral intensities observed in the conjugate ionosphere?, J. Geophys. Res. Space Physics, 114(A6), A06204, doi:10.1029/2009ja014185.AE

    2008 258 papers↑ top

    1. Abdu, M. A., et al. (2008), Abnormal evening vertical plasma drift and effects on ESF and EIA over Brazil-South Atlantic sector during the 30 October 2003 superstorm, J. Geophys. Res. Space Physics, 113(A7), A07313, doi:10.1029/2007ja012844.DstAE
    2. Aikio, A. T., T. Pitkänen, D. Fontaine, I. Dandouras, O. Amm, A. Kozlovsky, A. Vaivdas, and A. Fazakerley (2008), EISCAT and Cluster observations in the vicinity of the dynamical polar cap boundary, Ann. Geophys., 26(1), 87, doi:10.5194/angeo-26-87-2008.AE
    3. Alfonsi, L., et al. (2008), Probing the high latitude ionosphere from ground-based observations: The state of current knowledge and capabilities during IPY (2007 2009), J. Atmos. Sol.-Terr. Phys., 70(18), 2293, doi:10.1016/j.jastp.2008.06.013.AE
    4. Amata, E., G. Pallocchia, G. Consolini, M. F. Marcucci, and I. Bertello (2008), Comparison between three algorithms for Dst predictions over the 2003 2005 period, J. Atmos. Sol.-Terr. Phys., 70(2-4), 496, doi:10.1016/j.jastp.2007.08.041.Dst
    5. Anderson, P. C., W. R. Johnston, and J. Goldstein (2008), Observations of the ionospheric projection of the plasmapause, Geophys. Res. Lett., 35(15), L15110, doi:10.1029/2008gl033978.Dst
    6. Angelopoulos, V., et al. (2008), First Results from the THEMIS Mission, Space Sci. Rev., 141(1-4), 453, doi:10.1007/s11214-008-9378-4.AE
    7. Anh, V. V., J. M. Yong, and Z. G. Yu (2008), Stochastic modeling of the auroral electrojet index, J. Geophys. Res. Space Physics, 113(A10), A10215, doi:10.1029/2007ja012851.AE
    8. Apatenkov, S. V., et al. (2008), Conjugate observation of sharp dynamical boundary in the inner magnetosphere by Cluster and DMSP spacecraft and ground network, Ann. Geophys., 26(9), 2771, doi:10.5194/angeo-26-2771-2008.AE
    9. Ashour-Abdalla, M., R. J. Walker, V. Peroomian, and M. El-Alaoui (2008), On the importance of accurate solar wind measurements for studying magnetospheric dynamics, J. Geophys. Res. Space Physics, 113(A8), A08204, doi:10.1029/2007ja012785.Dst
    10. Astafyeva, E. I., E. L. Afraimovich, and S. V. Voeykov (2008), Generation of secondary waves due to intensive large-scale AGW traveling, Adv. Space Res., 41(9), 1459, doi:10.1016/j.asr.2007.03.059.Dst
    11. Baker, D. N., and S. G. Kanekal (2008), Solar cycle changes, geomagnetic variations, and energetic particle properties in the inner magnetosphere, J. Atmos. Sol.-Terr. Phys., 70(2-4), 195, doi:10.1016/j.jastp.2007.08.031.Dst
    12. Balan, N., H. Alleyne, S. Walker, H. Reme, I. McCrea, and A. Aylward (2008), Magnetosphere ionosphere coupling during the CME events of 07 12 November 2004, J. Atmos. Sol.-Terr. Phys., 70(17), 2101, doi:10.1016/j.jastp.2008.03.015.Dst
    13. Balan, N., S. V. Thampi, K. Lynn, Y. Otsuka, H. Alleyne, S. Watanabe, M. A. Abdu, and B. G. Fejer (2008), F3 layer during penetration electric field, J. Geophys. Res. Space Physics, 113(A3), A00A07, doi:10.1029/2008ja013206.Dst
    14. Balasis, G., I. A. Daglis, C. Papadimitriou, M. Kalimeri, A. Anastasiadis, and K. Eftaxias (2008), Dynamical complexity in Dst time series using non-extensive Tsallis entropy, Geophys. Res. Lett., 35(14), L14102, doi:10.1029/2008gl034743.Dst
    15. Basu, S., et al. (2008), Large magnetic storm-induced nighttime ionospheric flows at midlatitudes and their impacts on GPS-based navigation systems, J. Geophys. Res. Space Physics, 113(A3), A00A06, doi:10.1029/2008ja013076.DstSYM-H
    16. Benck, S., M. Cyamukungu, and J. Cabrera (2008), Study of correlations between waves and particle fluxes measured on board the DEMETER satellite, Adv. Space Res., 42(9), 1538, doi:10.1016/j.asr.2008.03.024.Dst
    17. Biktash, L. Z., T. Maruyama, and K. Nozaki (2008), The solar wind control of the equatorial ionosphere dynamics during geomagnetic storms, Adv. Space Res., 41(4), 562, doi:10.1016/j.asr.2007.04.087.AE
    18. Blagoveshchensky, D. V., A. S. Kalishin, and M. A. Sergeyeva (2008), Space weather effects on radio propagation: study of the CEDAR, GEM and ISTP storm events, Ann. Geophys., 26(6), 1479, doi:10.5194/angeo-26-1479-2008.DstAE
    19. Bombardieri, D. J., M. L. Duldig, J. E. Humble, and K. J. Michael (2008), An Improved Model for Relativistic Solar Proton Acceleration Applied to the 2005 January 20 and Earlier Events, Astrophys. J., 682(2), 1315, doi:10.1086/589494.Dst
    20. Bonelli, E. (2008), Attenuation of GPS scintillation in Brazil due to magnetic storms, Space Weather, 6(9), S09D05, doi:10.1029/2006sw000285.DstAE
    21. Bortnik, J., J. W. Cutler, C. Dunson, and T. E. Bleier (2008), The possible statistical relation of Pc1 pulsations to Earthquake occurrence at low latitudes, Ann. Geophys., 26(9), 2825, doi:10.5194/angeo-26-2825-2008.Dst
    22. Bortnik, J., J. W. Cutler, C. Dunson, T. E. Bleier, and R. L. McPherron (2008), Characteristics of low-latitude Pc1 pulsations during geomagnetic storms, J. Geophys. Res. Space Physics, 113(A4), A04201, doi:10.1029/2007ja012867.Dst
    23. Bowman, G. G., and I. K. Mortimer (2008), Ionogram-recorded equatorial spread-F and height changes at Huancayo during sunspot-maximum years, J. Geophys. Res. Space Physics, 113(A1), A01315, doi:10.1029/2006ja011881.AE
    24. Buresova, D., and J. Lastovicka (2008), Pre-storm electron density enhancements at middle latitudes, J. Atmos. Sol.-Terr. Phys., 70(15), 1848, doi:10.1016/j.jastp.2008.01.014.DstAE
    25. Buzulukova, N., M.-C. Fok, T. E. Moore, and D. M. Ober (2008), Generation of plasmaspheric undulations, Geophys. Res. Lett., 35(13), L13105, doi:10.1029/2008gl034164.Dst
    26. Cai, C. L., I. Dandouras, H. Rème, J. B. Cao, G. C. Zhou, and G. K. Parks (2008), Cluster observations on the thin current sheet in the magnetotail, Ann. Geophys., 26(4), 929, doi:10.5194/angeo-26-929-2008.AE
    27. Cao, J., et al. (2008), Characteristics of middle- to low-latitude Pi2 excited by bursty bulk flows, J. Geophys. Res. Space Physics, 113(A7), A07S15, doi:10.1029/2007ja012629.DstAE
    28. Cao, X., et al. (2008), Multispacecraft and ground-based observations of substorm timing and activations: Two case studies, J. Geophys. Res. Space Physics, 113(A7), A07S25, doi:10.1029/2007ja012761.AE
    29. Cattell, C., et al. (2008), Discovery of very large amplitude whistler-mode waves in Earth's radiation belts, Geophys. Res. Lett., 35(1), L01105, doi:10.1029/2007gl032009.AE
    30. Chakrabarty, D., R. Sekar, J. H. Sastri, and S. Ravindran (2008), Distinctive effects of interplanetary electric field and substorm on nighttime equatorial F layer: A case study, Geophys. Res. Lett., 35(19), L19108, doi:10.1029/2008gl035415.AESYM-HASY-H
    31. Chen, C. H., J. Y. Liu, K. Yumoto, C. H. Lin, and T. W. Fang (2008), Equatorial ionization anomaly of the total electron content and equatorial electrojet of ground-based geomagnetic field strength, J. Atmos. Sol.-Terr. Phys., 70(17), 2172, doi:10.1016/j.jastp.2008.09.021.Dst
    32. Chen, J., A. S. Sharma, J. W. Edwards, X. Shao, and Y. Kamide (2008), Spatiotemporal dynamics of the magnetosphere during geospace storms: Mutual information analysis, J. Geophys. Res. Space Physics, 113(A5), A05217, doi:10.1029/2007ja012310.DstAE
    33. Chen, S.-H., and T. E. Moore (2008), Ionospheric ions in the near-Earth magnetotail, J. Geophys. Res. Space Physics, 113(A8), A08232, doi:10.1029/2007ja012816.Dst
    34. Chi, P. J., and C. T. Russell (2008), Use of the Wigner-Ville distribution in interpreting and identifying ULF waves in triaxial magnetic records, J. Geophys. Res. Space Physics, 113(A1), A01218, doi:10.1029/2007ja012469.AE
    35. Cid, C., E. Saiz, and Y. Cerrato (2008), Comment on ``Interplanetary conditions leading to superintense geomagnetic storms (Dst <= -250 nT) during solar cycle 23'' by E. Echer et al, Geophys. Res. Lett., 35(21), L21107, doi:10.1029/2008gl034731.Dst
    36. Consolini, G., P. de Michelis, and R. Tozzi (2008), On the Earth's magnetospheric dynamics: Nonequilibrium evolution and the fluctuation theorem, J. Geophys. Res. Space Physics, 113(A8), A08222, doi:10.1029/2008ja013074.DstSYM-H
    37. Cully, C. M., J. W. Bonnell, and R. E. Ergun (2008), THEMIS observations of long-lived regions of large-amplitude whistler waves in the inner magnetosphere, Geophys. Res. Lett., 35(17), L17S16, doi:10.1029/2008gl033643.DstAE
    38. Dabas, R. S., K. Sharma, R. M. Das, N. K. Sethi, K. G. M. Pillai, and A. K. Mishra (2008), Ionospheric modeling for short- and long-term predictions of F region parameters over Indian zone, J. Geophys. Res. Space Physics, 113(A3), A03306, doi:10.1029/2007ja012539.Dst
    39. Danov, D. (2008), Field-aligned currents onboard the Intercosmos Bulgaria-1300 satellite in comparison with modeled FAC, J. Atmos. Sol.-Terr. Phys., 70(2-4), 646, doi:10.1016/j.jastp.2007.08.037.DstAE
    40. Darrouzet, F., J. de Keyser, P. M. E. Décréau, F. El Lemdani-Mazouz, and X. Vallières (2008), Statistical analysis of plasmaspheric plumes with Cluster/WHISPER observations, Ann. Geophys., 26(8), 2403, doi:10.5194/angeo-26-2403-2008.Dst
    41. Daum, P., M. H. Denton, J. A. Wild, M. G. G. T. Taylor, J. Å. Afránková, and M. Hayosh (2008), A general Cluster data and global MHD simulation comparison, Ann. Geophys., 26(11), 3411, doi:10.5194/angeo-26-3411-2008.Dst
    42. Dejong, A. D., A. J. Ridley, and C. R. Clauer (2008), Balanced reconnection intervals: four case studies, Ann. Geophys., 26(12), 3897, doi:10.5194/angeo-26-3897-2008.AE
    43. Dimitrova, S. (2008), Different geomagnetic indices as an indicator for geo-effective solar storms and human physiological state, J. Atmos. Sol.-Terr. Phys., 70(2-4), 420, doi:10.1016/j.jastp.2007.08.050.Dst
    44. Ding, F., W. Wan, L. Liu, E. L. Afraimovich, S. V. Voeykov, and N. P. Perevalova (2008), A statistical study of large-scale traveling ionospheric disturbances observed by GPS TEC during major magnetic storms over the years 2003-2005, J. Geophys. Res. Space Physics, 113(A3), A00A01, doi:10.1029/2008ja013037.DstAE
    45. Dmitriev, A. V., and H.-C. Yeh (2008), Geomagnetic signatures of sudden ionospheric disturbances during extreme solar radiation events, J. Atmos. Sol.-Terr. Phys., 70(15), 1971, doi:10.1016/j.jastp.2008.05.008.DstAESYM-H
    46. Dmitriev, A., and H.-C. Yeh (2008), Storm-time ionization enhancements at the topside low-latitude ionosphere, Ann. Geophys., 26(4), 867, doi:10.5194/angeo-26-867-2008.DstAE
    47. Du, A. M., B. T. Tsurutani, and W. Sun (2008), Anomalous geomagnetic storm of 21-22 January 2005: A storm main phase during northward IMFs, J. Geophys. Res. Space Physics, 113(A10), A10214, doi:10.1029/2008ja013284.DstAESYM-H
    48. Ebihara, Y., N. Nishitani, T. Kikuchi, T. Ogawa, K. Hosokawa, and M.-C. Fok (2008), Two-dimensional observations of overshielding during a magnetic storm by the Super Dual Auroral Radar Network (SuperDARN) Hokkaido radar, J. Geophys. Res. Space Physics, 113(A1), A01213, doi:10.1029/2007ja012641.DstAE
    49. Echer, E., A. Korth, Q.-G. Zong, M. Fraünz, W. D. Gonzalez, F. L. Guarnieri, S. Y. Fu, and H. Reme (2008), Cluster observations of O+ escape in the magnetotail due to shock compression effects during the initial phase of the magnetic storm on 17 August 2001, J. Geophys. Res. Space Physics, 113(A5), A05209, doi:10.1029/2007ja012624.DstSYM-H
    50. Echer, E., W. D. Gonzalez, and B. T. Tsurutani (2008), Interplanetary conditions leading to superintense geomagnetic storms (Dst <= -250 nT) during solar cycle 23, Geophys. Res. Lett., 35(6), L06S03, doi:10.1029/2007gl031755.DstSYM-HASY-H
    51. Echer, E., W. D. Gonzalez, B. T. Tsurutani, and A. L. C. Gonzalez (2008), Interplanetary conditions causing intense geomagnetic storms (Dst <= -100 nT) during solar cycle 23 (1996-2006), J. Geophys. Res. Space Physics, 113(A5), A05221, doi:10.1029/2007ja012744.Dst
    52. Eriksson, S., M. R. Hairston, F. J. Rich, H. Korth, Y. Zhang, and B. J. Anderson (2008), High-latitude ionosphere convection and Birkeland current response for the 15 May 2005 magnetic storm recovery phase, J. Geophys. Res. Space Physics, 113(A3), A00A08, doi:10.1029/2008ja013139.SYM-H
    53. Escoubet, C. P., et al. (2008), Two sources of magnetosheath ions observed by Cluster in the mid-altitude polar cusp, Adv. Space Res., 41(10), 1528, doi:10.1016/j.asr.2007.04.031.AE
    54. Farr, N. L., D. N. Baker, and M. Wiltberger (2008), Complexities of a 3-D plasmoid flux rope as shown by an MHD simulation, J. Geophys. Res. Space Physics, 113(A12), A12202, doi:10.1029/2008ja013328.AE
    55. Farrugia, C. J., F. T. Gratton, V. K. Jordanova, H. Matsui, S. Mühlbachler, R. B. Torbert, K. W. Ogilvie, and H. J. Singer (2008), Tenuous solar winds: Insights on solar wind magnetosphere interactions, J. Atmos. Sol.-Terr. Phys., 70(2-4), 371, doi:10.1016/j.jastp.2007.08.032.Dst
    56. Fejer, B. G., J. W. Jensen, and S.-Y. Su (2008), Seasonal and longitudinal dependence of equatorial disturbance vertical plasma drifts, Geophys. Res. Lett., 35(20), L20106, doi:10.1029/2008gl035584.AE
    57. Finch, I. D., M. L. Lockwood, and A. P. Rouillard (2008), Effects of solar wind magnetosphere coupling recorded at different geomagnetic latitudes: Separation of directly-driven and storage/release systems, Geophys. Res. Lett., 35(21), L21105, doi:10.1029/2008gl035399.DstAE
    58. Fok, M.-C., R. B. Horne, N. P. Meredith, and S. A. Glauert (2008), Radiation Belt Environment model: Application to space weather nowcasting, J. Geophys. Res. Space Physics, 113(A3), A03S08, doi:10.1029/2007ja012558.Dst
    59. Fung, S. F., and X. Shao (2008), Specification of multiple geomagnetic responses to variable solar wind and IMF input, Ann. Geophys., 26(3), 639, doi:10.5194/angeo-26-639-2008.DstAE
    60. Fuselier, S. A., E. S. Claflin, and T. E. Moore (2008), Magnetic local time extent of ion outflow during substorm recovery, J. Geophys. Res. Space Physics, 113(A6), A06204, doi:10.1029/2007ja012811.AE
    61. Förster, M., S. E. Haaland, G. Paschmann, J. M. Quinn, R. B. Torbert, H. Vaith, and C. A. Kletzing (2008), High-latitude plasma convection during Northward IMF as derived from in-situ magnetospheric Cluster EDI measurements, Ann. Geophys., 26(9), 2685, doi:10.5194/angeo-26-2685-2008.Dst
    62. Gabrielse, C., V. Angelopoulos, A. Runov, L. Kepko, K. H. Glassmeier, H. U. Auster, J. McFadden, C. W. Carlson, and D. Larson (2008), Propagation characteristics of plasma sheet oscillations during a small storm, Geophys. Res. Lett., 35(17), L17S13, doi:10.1029/2008gl033664.DstAE
    63. Gamayunov, K. V., and G. V. Khazanov (2008), Crucial role of ring current H+ in electromagnetic ion cyclotron wave dispersion relation: Results from global simulations, J. Geophys. Res. Space Physics, 113(A11), A11220, doi:10.1029/2008ja013494.Dst
    64. Ge, Y. S., C. T. Russell, and T.-S. Hsu (2008), Implication of multiple dipolarization event near 9 RE for the physics of substorms, Adv. Space Res., 41(8), 1243, doi:10.1016/j.asr.2007.12.010.AE
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    251. Zhang, Y., L. J. Paxton, and Y. Zheng (2008), Interplanetary shock induced ring current auroras, J. Geophys. Res. Space Physics, 113(A1), A01212, doi:10.1029/2007ja012554.Dst
    252. Zhang, Y., W. Sun, X. S. Feng, C. S. Deehr, C. D. Fry, and M. Dryer (2008), Statistical analysis of corotating interaction regions and their geoeffectiveness during solar cycle 23, J. Geophys. Res. Space Physics, 113(A8), A08106, doi:10.1029/2008ja013095.Dst
    253. Zhao, B., et al. (2008), Ionosphere disturbances observed throughout Southeast Asia of the superstorm of 20-22 November 2003, J. Geophys. Res. Space Physics, 113(A3), A00A04, doi:10.1029/2008ja013054.SYM-H
    254. Zhao, B., M. Wang, T. Yu, W. Wan, J. Lei, L. Liu, and B. Ning (2008), Is an unusual large enhancement of ionospheric electron density linked with the 2008 great Wenchuan earthquake?, J. Geophys. Res. Space Physics, 113(A11), A11304, doi:10.1029/2008ja013613.DstSYM-H
    255. Zhao, B., W. Wan, L. Liu, K. Igarashi, M. Nakamura, L. J. Paxton, S.-Y. Su, G. Li, and Z. Ren (2008), Anomalous enhancement of ionospheric electron content in the Asian-Australian region during a geomagnetically quiet day, J. Geophys. Res. Space Physics, 113(A11), A11302, doi:10.1029/2007ja012987.AESYM-H
    256. Zheng, Y., A. T. Y. Lui, M.-C. Fok, B. J. Anderson, P. C. Brandt, and D. G. Mitchell (2008), Controlling factors of Region 2 field-aligned current and its relationship to the ring current: Model results, Adv. Space Res., 41(8), 1234, doi:10.1016/j.asr.2007.05.084.Dst
    257. Zheng, Y., P. C. Brandt, A. T. Y. Lui, and M.-C. Fok (2008), On ionospheric trough conductance and subauroral polarization streams: Simulation results, J. Geophys. Res. Space Physics, 113(A4), A04209, doi:10.1029/2007ja012532.Dst
    258. Åsnes, A., R. W. H. Friedel, B. Lavraud, G. D. Reeves, M. G. G. T. Taylor, and P. Daly (2008), Statistical properties of tail plasma sheet electrons above 40 keV, J. Geophys. Res. Space Physics, 113(A3), A03202, doi:10.1029/2007ja012502.AE

    2007 217 papers↑ top

    1. Abdu, M. A., T. Maruyama, I. S. Batista, S. Saito, and M. Nakamura (2007), Ionospheric responses to the October 2003 superstorm: Longitude/local time effects over equatorial low and middle latitudes, J. Geophys. Res. Space Physics, 112(A10), A10306, doi:10.1029/2006ja012228.DstAE
    2. Aksnes, A., R. Eastes, S. Budzien, and K. Dymond (2007), Dependence of neutral temperatures in the lower thermosphere on geomagnetic activity, J. Geophys. Res. Space Physics, 112(A6), A06302, doi:10.1029/2006ja012214.AE
    3. Apatenkov, S. V., et al. (2007), Multi-spacecraft observation of plasma dipolarization/injection in the inner magnetosphere, Ann. Geophys., 25(3), 801, doi:10.5194/angeo-25-801-2007.DstAE
    4. Arikan, F., O. Arikan, and C. B. Erol (2007), Regularized estimation of TEC from GPS data for certain midlatitude stations and comparison with the IRI model, Adv. Space Res., 39(5), 867, doi:10.1016/j.asr.2007.01.082.Dst
    5. Astafyeva, E. I., E. L. Afraimovich, and E. A. Kosogorov (2007), Dynamics of total electron content distribution during strong geomagnetic storms, Adv. Space Res., 39(8), 1313, doi:10.1016/j.asr.2007.03.006.Dst
    6. Babayev, E. S., and A. A. Allahverdiyeva (2007), Effects of geomagnetic activity variations on the physiological and psychological state of functionally healthy humans: Some results of Azerbaijani studies, Adv. Space Res., 40(12), 1941, doi:10.1016/j.asr.2007.02.099.Dst
    7. Baker, J. B. H., R. A. Greenwald, J. M. Ruohoniemi, K. Oksavik, J. W. Gjerloev, L. J. Paxton, and M. R. Hairston (2007), Observations of ionospheric convection from the Wallops SuperDARN radar at middle latitudes, J. Geophys. Res. Space Physics, 112(A1), A01303, doi:10.1029/2006ja011982.AESYM-HSYM-DASY-HASY-D
    8. Basu, S., S. Basu, F. J. Rich, K. M. Groves, E. MacKenzie, C. Coker, Y. Sahai, P. R. Fagundes, and F. Becker-Guedes (2007), Response of the equatorial ionosphere at dusk to penetration electric fields during intense magnetic storms, J. Geophys. Res. Space Physics, 112(A8), A08308, doi:10.1029/2006ja012192.SYM-HSYM-D
    9. Baumgardner, J., J. Wroten, J. Semeter, J. Kozyra, M. Buonsanto, P. Erickson, and M. Mendillo (2007), A very bright SAR arc: implications for extreme magnetosphere-ionosphere coupling, Ann. Geophys., 25(12), 2593, doi:10.5194/angeo-25-2593-2007.Dst
    10. Becker-Guedes, F., et al. (2007), The ionospheric response in the Brazilian sector during the super geomagnetic storm on 20 November 2003, Ann. Geophys., 25(4), 863, doi:10.5194/angeo-25-863-2007.DstSYM-H
    11. Biqiang, Z., W. Weixing, L. Libo, and M. Tian (2007), Morphology in the total electron content under geomagnetic disturbed conditions: results from global ionosphere maps, Ann. Geophys., 25(7), 1555, doi:10.5194/angeo-25-1555-2007.Dst
    12. Blockx, C., J.-C. Gérard, V. Coumans, B. Hubert, and M. Meurant (2007), A comparison between FUV remote sensing of magnetotail stretching and the T01 model during quiet conditions and growth phases, Ann. Geophys., 25(1), 161, doi:10.5194/angeo-25-161-2007.DstAE
    13. Bogdanova, Y. V., C. J. Owen, G. Siscoe, A. N. Fazakerley, I. Dandouras, O. Marghitu, Z. Kaymaz, H. Rème, and E. A. Lucek (2007), Cluster Observations of the Magnetospheric Low-Latitude Boundary Layer and Cusp during Extreme Solar Wind and Interplanetary Magnetic Field Conditions: I. 10 November 2004 ICME, Sol. Phys., 244(1-2), 201, doi:10.1007/s11207-007-0417-1.DstAE
    14. Bogdanova, Y. V., C. J. Owen, G. Siscoe, A. N. Fazakerley, I. Dandouras, O. Marghitu, Z. Kaymaz, H. Rème, and E. A. Lucek (2007), Cluster Observations of the Magnetospheric Low-Latitude Boundary Layer and Cusp during Extreme Solar Wind and Interplanetary Magnetic Field Conditions: II. 7 November 2004 ICME and Statistical Survey, Sol. Phys., 244(1-2), 233, doi:10.1007/s11207-007-0418-0.DstAE
    15. Bombardieri, D. J., K. J. Michael, M. L. Duldig, and J. E. Humble (2007), Relativistic Proton Production during the 2001 April 15 Solar Event, Astrophys. J., 665(1), 813, doi:10.1086/519514.Dst
    16. Bortnik, J., R. M. Thorne, and N. P. Meredith (2007), Modeling the propagation characteristics of chorus using CRRES suprathermal electron fluxes, J. Geophys. Res. Space Physics, 112(A8), A08204, doi:10.1029/2006ja012237.AE
    17. Burešová, D., and J. Laštovička (2007), Pre-storm enhancements of foF2 above Europe, Adv. Space Res., 39(8), 1298, doi:10.1016/j.asr.2007.03.003.AE
    18. Burke, W. J., C. Y. Huang, F. A. Marcos, and J. O. Wise (2007), Interplanetary control of thermospheric densities during large magnetic storms, J. Atmos. Sol.-Terr. Phys., 69(3), 279, doi:10.1016/j.jastp.2006.05.027.Dst
    19. Burke, W. J., L. C. Gentile, and C. Y. Huang (2007), Penetration electric fields driving main phase Dst, J. Geophys. Res. Space Physics, 112(A7), A07208, doi:10.1029/2006ja012137.DstSYM-H
    20. Chen, G.-X., W.-Y. Xu, A.-M. Du, Y.-Y. Wu, B. Chen, and X.-C. Liu (2007), Statistical characteristics of the day-to-day variability in the geomagnetic Sq field, J. Geophys. Res. Space Physics, 112(A6), A06320, doi:10.1029/2006ja012059.Dst
    21. Chen, Y., R. H. W. Friedel, G. D. Reeves, T. E. Cayton, and R. Christensen (2007), Multisatellite determination of the relativistic electron phase space density at geosynchronous orbit: An integrated investigation during geomagnetic storm times, J. Geophys. Res. Space Physics, 112(A11), A11214, doi:10.1029/2007ja012314.DstAE
    22. Chung, J.-K., Q. Wu, Y. H. Kim, Y.-I. Won, S. Solomon, J. U. Park, and B. G. Choi (2007), Enhancement of OI 630.0 nm emission at mid-latitudes during an intense magnetic storm, J. Atmos. Sol.-Terr. Phys., 69(6), 697, doi:10.1016/j.jastp.2007.01.010.Dst
    23. Consolini, G., and M. Kretzschmar (2007), Thermodynamics of rare events and impulsive relaxation events in the magnetospheric substorm dynamics, Planet. Space Sci., 55(15), 2244, doi:10.1016/j.pss.2007.05.017.AE
    24. Dabas, R. S., R. M. Das, K. Sharma, and K. G. M. Pillai (2007), Ionospheric pre-cursors observed over low latitudes during some of the recent major earthquakes, J. Atmos. Sol.-Terr. Phys., 69(15), 1813, doi:10.1016/j.jastp.2007.09.005.Dst
    25. Daglis, I. A., B. T. Tsurutani, W. D. Gonzalez, J. U. Kozyra, S. Orsini, J. Cladis, Y. Kamide, M. G. Henderson, and D. Vassiliadis (2007), Key features of intense geospace storms—A comparative study of a solar maximum and a solar minimum storm, Planet. Space Sci., 55(1-2), 32, doi:10.1016/j.pss.2006.04.007.Dst
    26. de Lucas, A., W. D. Gonzalez, E. Echer, F. L. Guarnieri, A. Dal Lago, M. R. da Silva, L. E. A. Vieira, and N. J. Schuch (2007), Energy balance during intense and super-intense magnetic storms using an Akasofu ∊ parameter corrected by the solar wind dynamic pressure, J. Atmos. Sol.-Terr. Phys., 69(15), 1851, doi:10.1016/j.jastp.2007.09.001.Dst
    27. Denton, M. H., M. F. Thomsen, B. Lavraud, M. G. Henderson, R. M. Skoug, H. O. Funsten, J.-M. Jahn, C. J. Pollock, and J. M. Weygand (2007), Transport of plasma sheet material to the inner magnetosphere, Geophys. Res. Lett., 34(4), L04105, doi:10.1029/2006gl027886.Dst
    28. Ding, F., W. Wan, B. Ning, and M. Wang (2007), Large-scale traveling ionospheric disturbances observed by GPS total electron content during the magnetic storm of 29-30 October 2003, J. Geophys. Res. Space Physics, 112(A6), A06309, doi:10.1029/2006ja012013.DstAE
    29. Doxas, I., W. Horton, J. Lyon, M. Wiltberger, and R. S. Weigel (2007), Branch prediction and speculative execution: A magnetospheric data assimilation scheme for space weather forecasting, Space Weather, 5(11), S11001, doi:10.1029/2006sw000236.AE
    30. Ebihara, Y., Y.-M. Tanaka, S. Takasaki, A. T. Weatherwax, and M. Taguchi (2007), Quasi-stationary auroral patches observed at the South Pole Station, J. Geophys. Res. Space Physics, 112(A1), A01201, doi:10.1029/2006ja012087.DstAE
    31. Echim, M. M., and H. Lamy (2007), Energy transfer in the solar wind magnetosphere: Long-term fluctuations and intermittency, Adv. Space Res., 40(7), 1095, doi:10.1016/j.asr.2007.01.085.AE
    32. Fagundes, P. R., V. Klausner, Y. Sahai, V. G. Pillat, F. Becker-Guedes, F. C. P. Bertoni, M. J. A. Bolzan, and J. R. Abalde (2007), Observations of daytime F2-layer stratification under the southern crest of the equatorial ionization anomaly region, J. Geophys. Res. Space Physics, 112(A4), A04302, doi:10.1029/2006ja011888.DstAE
    33. Fang, X., M. W. Liemohn, J. U. Kozyra, D. S. Evans, A. D. Dejong, and B. A. Emery (2007), Global 30-240 keV proton precipitation in the 17-18 April 2002 geomagnetic storms: 1. Patterns, J. Geophys. Res. Space Physics, 112(A5), A05301, doi:10.1029/2006ja011867.Dst
    34. Farrugia, C. J., A. Grocott, P. E. Sandholt, S. W. H. Cowley, Y. Miyoshi, F. J. Rich, V. K. Jordanova, R. B. Torbert, and A. Sharma (2007), The magnetosphere under weak solar wind forcing, Ann. Geophys., 25(1), 191, doi:10.5194/angeo-25-191-2007.DstAE
    35. Fear, R. C., et al. (2007), Motion of flux transfer events: a test of the Cooling model, Ann. Geophys., 25(7), 1669, doi:10.5194/angeo-25-1669-2007.AE
    36. Fejer, B. G., J. W. Jensen, T. Kikuchi, M. A. Abdu, and J. L. Chau (2007), Equatorial Ionospheric Electric Fields During the November 2004 Magnetic Storm, J. Geophys. Res. Space Physics, 112(A10), A10304, doi:10.1029/2007ja012376.DstAESYM-HASY-H
    37. Finch, I., and M. Lockwood (2007), Solar wind-magnetosphere coupling functions on timescales of 1 day to 1 year, Ann. Geophys., 25(2), 495, doi:10.5194/angeo-25-495-2007.DstAE
    38. Foster, J. C., and A. J. Coster (2007), Conjugate localized enhancement of total electron content at low latitudes in the American sector, J. Atmos. Sol.-Terr. Phys., 69(10-11), 1241, doi:10.1016/j.jastp.2006.09.012.Dst
    39. Fujiwara, H., R. Kataoka, M. Suzuki, S. Maeda, S. Nozawa, K. Hosokawa, H. Fukunishi, N. Sato, and M. Lester (2007), Electromagnetic energy deposition rate in the polar upper thermosphere derived from the EISCAT Svalbard radar and CUTLASS Finland radar observations, Ann. Geophys., 25(11), 2393, doi:10.5194/angeo-25-2393-2007.AE
    40. Fuller-Rowell, T., M. Codrescu, N. Maruyama, M. Fredrizzi, E. Araujo-Pradere, S. Sazykin, and G. Bust (2007), Observed and modeled thermosphere and ionosphere response to superstorms, Radio Sci., 42(4), RS4S90, doi:10.1029/2005rs003392.DstSYM-H
    41. Förster, M., G. Paschmann, S. E. Haaland, J. M. Quinn, R. B. Torbert, H. Vaith, and C. A. Kletzing (2007), High-latitude plasma convection from Cluster EDI: variances and solar wind correlations, Ann. Geophys., 25(7), 1691, doi:10.5194/angeo-25-1691-2007.Dst
    42. Gjerloev, J. W., R. A. Hoffman, J. B. Sigwarth, and L. A. Frank (2007), Statistical description of the bulge-type auroral substorm in the far ultraviolet, J. Geophys. Res. Space Physics, 112(A7), A07213, doi:10.1029/2006ja012189.AE
    43. Gonzalez, W. D., E. Echer, A. L. Clua-Gonzalez, and B. T. Tsurutani (2007), Interplanetary origin of intense geomagnetic storms (Dst < -100 nT) during solar cycle 23, Geophys. Res. Lett., 34(6), L06101, doi:10.1029/2006gl028879.Dst
    44. Goodrich, C. C., T. I. Pulkkinen, J. G. Lyon, and V. G. Merkin (2007), Magnetospheric convection during intermediate driving: Sawtooth events and steady convection intervals as seen in Lyon-Fedder-Mobarry global MHD simulations, J. Geophys. Res. Space Physics, 112(A8), A08201, doi:10.1029/2006ja012155.DstAE
    45. Gopalswamy, N., S. Yashiro, and S. Akiyama (2007), Geoeffectiveness of halo coronal mass ejections, J. Geophys. Res. Space Physics, 112(A6), A06112, doi:10.1029/2006ja012149.Dst
    46. Gómez, L., J. Ignacio Sabbione, M. Andrea van Zele, A. Meza, and C. Brunini (2007), Determination of a geomagnetic storm and substorm effects on the ionospheric variability from GPS observations at high latitudes, J. Atmos. Sol.-Terr. Phys., 69(8), 955, doi:10.1016/j.jastp.2007.03.002.DstAE
    47. Haaland, S. E., G. Paschmann, M. Förster, J. M. Quinn, R. B. Torbert, C. E. McIlwain, H. Vaith, P. A. Puhl-Quinn, and C. A. Kletzing (2007), High-latitude plasma convection from Cluster EDI measurements: method and IMF-dependence, Ann. Geophys., 25(1), 239, doi:10.5194/angeo-25-239-2007.Dst
    48. Han, D.-S., et al. (2007), Coupling of perturbations in the solar wind density to global Pi3 pulsations: A case study, J. Geophys. Res. Space Physics, 112(A5), A05217, doi:10.1029/2006ja011675.SYM-H
    49. Han, D.-S., T. Araki, H.-G. Yang, Z.-T. Chen, T. Iyemori, and P. Stauning (2007), Comparative study of Geomagnetic Sudden Commencement (SC) between Oersted and ground observations at different local times, J. Geophys. Res. Space Physics, 112(A5), A05226, doi:10.1029/2006ja011953.SYM-H
    50. Hargreaves, J. K., M. J. Birch, and B. J. I. Bromage (2007), D- and E-region effects in the auroral zone during a moderately active 24-h period in July 2005, Ann. Geophys., 25(8), 1837, doi:10.5194/angeo-25-1837-2007.AE
    51. Harra, L. K., et al. (2007), How Does Large Flaring Activity from the Same Active Region Produce Oppositely Directed Magnetic Clouds?, Sol. Phys., 244(1-2), 95, doi:10.1007/s11207-007-9002-x.Dst
    52. Heelis, R. A., and W. R. Coley (2007), Variations in the low- and middle-latitude topside ion concentration observed by DMSP during superstorm events, J. Geophys. Res. Space Physics, 112(A8), A08310, doi:10.1029/2007ja012326.Dst
    53. Horvath, I. (2007), Impact of 10 January 1997 geomagnetic storm on the nighttime Weddell Sea Anomaly: A study utilizing data provided by the TOPEX/Poseidon mission and the Defense Meteorological Satellite Program, and simulations generated by the Coupled Thermosphere/Ionosphere Plasmasphere model, J. Geophys. Res. Space Physics, 112(A6), A06329, doi:10.1029/2006ja012153.DstAE
    54. Hsu, T.-S., and R. L. McPherron (2007), A statistical study of the relation of Pi 2 and plasma flows in the tail, J. Geophys. Res. Space Physics, 112(A5), A05209, doi:10.1029/2006ja011782.AE
    55. Huang, C. Y., W. J. Burke, and C. S. Lin (2007), Low-energy ion precipitation during the Halloween storm, J. Atmos. Sol.-Terr. Phys., 69(1-2), 101, doi:10.1016/j.jastp.2006.06.018.Dst
    56. Huang, C.-S., and J. C. Foster (2007), Correlation of the subauroral polarization streams (SAPS) with the Dst index during severe magnetic storms, J. Geophys. Res. Space Physics, 112(A11), A11302, doi:10.1029/2007ja012584.Dst
    57. Huang, C.-S., J. C. Foster, and Y. Sahai (2007), Significant depletions of the ionospheric plasma density at middle latitudes: A possible signature of equatorial spread F bubbles near the plasmapause, J. Geophys. Res. Space Physics, 112(A5), A05315, doi:10.1029/2007ja012307.DstSYM-H
    58. Huang, C.-S., S. Sazykin, J. L. Chau, N. Maruyama, and M. C. Kelley (2007), Penetration electric fields: Efficiency and characteristic time scale, J. Atmos. Sol.-Terr. Phys., 69(10-11), 1135, doi:10.1016/j.jastp.2006.08.016.DstAESYM-H
    59. Hubert, B., K. Kauristie, O. Amm, S. E. Milan, A. Grocott, S. W. H. Cowley, and T. I. Pulkkinen (2007), Auroral streamers and magnetic flux closure, Geophys. Res. Lett., 34(15), L15105, doi:10.1029/2007gl030580.DstAE
    60. Imber, S. M., S. E. Milan, and B. Hubert (2007), Observations of significant flux closure by dual lobe reconnection, Ann. Geophys., 25(7), 1617, doi:10.5194/angeo-25-1617-2007.AE
    61. Jakowski, N., V. Wilken, and C. Mayer (2007), Space weather monitoring by GPS measurements on board CHAMP, Space Weather, 5(8), 08006, doi:10.1029/2006sw000271.Dst
    62. Janzhura, A., O. Troshichev, and P. Stauning (2007), Unified PC indices: Relation to isolated magnetic substorms, J. Geophys. Res. Space Physics, 112(A9), A09207, doi:10.1029/2006ja012132.AE
    63. Jayachandran, P. T., J. W. MacDougall, A. M. Hamza, and M. G. Henderson (2007), Observations of dipolarization at geosynchronous orbits and its response in the polar cap convection during extreme southward interplanetary magnetic field conditions, J. Geophys. Res. Space Physics, 112(A10), A10216, doi:10.1029/2007ja012544.AE
    64. Jee, G., A. G. Burns, W. Wang, S. C. Solomon, R. W. Schunk, L. Scherliess, D. C. Thompson, J. J. Sojka, and L. Zhu (2007), Duration of an ionospheric data assimilation initialization of a coupled thermosphere-ionosphere model, Space Weather, 5(1), 01004, doi:10.1029/2006sw000250.Dst
    65. Jordanova, V. K. (2007), Modeling geomagnetic storm dynamics: New results and challenges, J. Atmos. Sol.-Terr. Phys., 69(1-2), 56, doi:10.1016/j.jastp.2006.06.016.Dst
    66. Jordanova, V. K., M. Spasojevic, and M. F. Thomsen (2007), Modeling the electromagnetic ion cyclotron wave-induced formation of detached subauroral proton arcs, J. Geophys. Res. Space Physics, 112(A8), A08209, doi:10.1029/2006ja012215.Dst
    67. Kakad, B., K. Jeeva, K. U. Nair, and A. Bhattacharyya (2007), Magnetic activity linked generation of nighttime equatorial spread F irregularities, J. Geophys. Res. Space Physics, 112(A7), A07311, doi:10.1029/2006ja012021.AE
    68. Kale, Z. C., I. R. Mann, C. L. Waters, J. Goldstein, F. W. Menk, and L. G. Ozeke (2007), Ground magnetometer observation of a cross-phase reversal at a steep plasmapause, J. Geophys. Res. Space Physics, 112(A10), A10222, doi:10.1029/2007ja012367.Dst
    69. Kan, J. R., X. Xing, and R. A. Wolf (2007), Intensity of geomagnetic storms depends on the X-line location in the plasma sheet, J. Geophys. Res. Space Physics, 112(A4), A04216, doi:10.1029/2006ja011945.Dst
    70. Kane, R. P., and E. Echer (2007), Phase shift (time) between storm-time maximum negative excursions of geomagnetic disturbance index Dst and interplanetary Bz, J. Atmos. Sol.-Terr. Phys., 69(9), 1009, doi:10.1016/j.jastp.2007.03.008.DstSYM-D
    71. Karpachev, A. T., G. F. Deminova, N. Beloff, T. D. Carozzi, P. F. Denisenko, T. J. T. Karhunen, and M. Lester (2007), Global pattern of the ionospheric response to large-scale internal gravity waves, J. Atmos. Sol.-Terr. Phys., 69(8), 906, doi:10.1016/j.jastp.2007.03.001.DstAE
    72. Karpachev, A. T., L. Z. Biktash, and T. Maruyama (2007), The high-latitude ionosphere structure on 22 March, 1979 magnetic storm from multi-satellite and ground-based observation, Adv. Space Res., 40(12), 1852, doi:10.1016/j.asr.2007.04.088.AE
    73. Kataoka, R., N. Nishitani, Y. Ebihara, K. Hosokawa, T. Ogawa, T. Kikuchi, and Y. Miyoshi (2007), Dynamic variations of a convection flow reversal in the subauroral postmidnight sector as seen by the SuperDARN Hokkaido HF radar, Geophys. Res. Lett., 34(21), L21105, doi:10.1029/2007gl031552.AESYM-H
    74. Kelley, M. C., M. J. Nicolls, D. Anderson, A. Anghel, J. L. Chau, R. Sekar, K. S. V. Subbarao, and A. Bhattacharyya (2007), Multi-longitude case studies comparing the interplanetary and equatorial ionospheric electric fields using an empirical model, J. Atmos. Sol.-Terr. Phys., 69(10-11), 1174, doi:10.1016/j.jastp.2006.08.014.DstAE
    75. Khazanov, G. V., K. V. Gamayunov, D. L. Gallagher, and J. F. Spann (2007), Strong pitch-angle diffusion of ring current ions in geomagnetic storm-associated conditions, J. Atmos. Sol.-Terr. Phys., 69(1-2), 142, doi:10.1016/j.jastp.2006.07.010.Dst
    76. Khazanov, G. V., K. V. Gamayunov, D. L. Gallagher, J. U. Kozyra, and M. W. Liemohn (2007), Self-consistent model of magnetospheric ring current and propagating electromagnetic ion cyclotron waves: 2. Wave-induced ring current precipitation and thermal electron heating, J. Geophys. Res. Space Physics, 112(A4), A04209, doi:10.1029/2006ja012033.Dst
    77. Kil, H., S.-J. Oh, L. J. Paxton, Y. Zhang, S.-Y. Su, and K.-W. Min (2007), Spike-like change of the vertical E × B drift in the equatorial region during very large geomagnetic storms, Geophys. Res. Lett., 34(9), L09103, doi:10.1029/2007gl029277.Dst
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    171. Tadokoro, H., F. Tsuchiya, Y. Miyoshi, H. Misawa, A. Morioka, and D. S. Evans (2007), Electron flux enhancement in the inner radiation belt during moderate magnetic storms, Ann. Geophys., 25(6), 1359, doi:10.5194/angeo-25-1359-2007.Dst
    172. Takahashi, K., and A. Y. Ukhorskiy (2007), Solar wind control of Pc5 pulsation power at geosynchronous orbit, J. Geophys. Res. Space Physics, 112(A11), A11205, doi:10.1029/2007ja012483.DstAE
    173. Taktakishvili, A., M. M. Kuznetsova, M. Hesse, M.-C. Fok, L. Rastätter, M. Maddox, A. Chulaki, T. I. Gombosi, and D. L. De Zeeuw (2007), Buildup of the ring current during periodic loading-unloading cycles in the magnetotail driven by steady southward interplanetary magnetic field, J. Geophys. Res. Space Physics, 112(A9), A09203, doi:10.1029/2007ja012317.Dst
    174. Temmer, M., B. Vršnak, and A. M. Veronig (2007), Periodic Appearance of Coronal Holes and the Related Variation of Solar Wind Parameters, Sol. Phys., 241(2), 371, doi:10.1007/s11207-007-0336-1.Dst
    175. Trichtchenko, L., et al. (2007), November 2004 space weather events: Real-time observations and forecasts, Space Weather, 5(6), 06001, doi:10.1029/2006sw000281.Dst
    176. Trivedi, N. B., et al. (2007), Geomagnetically induced currents in an electric power transmission system at low latitudes in Brazil: A case study, Space Weather, 5(4), 04004, doi:10.1029/2006sw000282.SYM-H
    177. Troshichev, O. A., A. S. Janzhura, and P. Stauning (2007), Magnetic activity in the polar caps: Relation to sudden changes in the solar wind dynamic pressure, J. Geophys. Res. Space Physics, 112(A11), A11202, doi:10.1029/2007ja012369.AE
    178. Tsubouchi, K., and Y. Omura (2007), Long-term occurrence probabilities of intense geomagnetic storm events, Space Weather, 5(12), S12003, doi:10.1029/2007sw000329.DstSYM-H
    179. Tsurutani, B. T., O. P. Verkhoglyadova, A. J. Mannucci, T. Araki, A. Sato, T. Tsuda, and K. Yumoto (2007), Oxygen ion uplift and satellite drag effects during the 30 October 2003 daytime superfountain event, Ann. Geophys., 25(3), 569, doi:10.5194/angeo-25-569-2007.SYM-H
    180. Tsyganenko, N. A., and M. I. Sitnov (2007), Magnetospheric configurations from a high-resolution data-based magnetic field model, J. Geophys. Res. Space Physics, 112(A6), A06225, doi:10.1029/2007ja012260.Dst
    181. Tu, J., P. Song, B. W. Reinisch, and J. L. Green (2007), Smooth electron density transition from plasmasphere to the subauroral region, J. Geophys. Res. Space Physics, 112(A5), A05227, doi:10.1029/2007ja012298.Dst
    182. Tu, J.-N., M. Dhar, P. Song, B. W. Reinisch, J. L. Green, R. F. Benson, and A. J. Coster (2007), Extreme polar cap density enhancements along magnetic field lines during an intense geomagnetic storm, J. Geophys. Res. Space Physics, 112(A5), A05201, doi:10.1029/2006ja012034.Dst
    183. Tulasi Ram, S., P. V. S. Rama Rao, D. S. V. V. D. Prasad, K. Niranjan, R. Sridharan, C. V. Devasia, and S. Ravindran (2007), Local time dependant response of Indian equatorial ionosphere to the moderate geomagnetic storms, Adv. Space Res., 39(8), 1304, doi:10.1016/j.asr.2006.12.031.Dst
    184. Tóth, G., D. L. de Zeeuw, T. I. Gombosi, W. B. Manchester, A. J. Ridley, I. V. Sokolov, and I. I. Roussev (2007), Sun-to-thermosphere simulation of the 28-30 October 2003 storm with the Space Weather Modeling Framework, Space Weather, 5(6), 06003, doi:10.1029/2006sw000272.Dst
    185. Vallat, C., et al. (2007), Ion multi-nose structures observed by Cluster in the inner Magnetosphere, Ann. Geophys., 25(1), 171, doi:10.5194/angeo-25-171-2007.Dst
    186. Vapirev, A. E., and V. K. Jordanova (2007), Calculation of bounce-averaged velocities and hydrogen densities for a storm-time magnetic field, Geophys. Res. Lett., 34(10), L10103, doi:10.1029/2007gl029380.Dst
    187. Vennerstrom, S., F. Christiansen, N. Olsen, and T. Moretto (2007), On the cause of IMF By related mid- and low latitude magnetic disturbances, Geophys. Res. Lett., 34(16), L16101, doi:10.1029/2007gl030175.Dst
    188. Verbanac, G., H. Lühr, M. Rother, M. Korte, and M. Mandea (2007), Contributions of the external field to the observatory annual means and a proposal for their corrections, Earth Planets Space, 59(4), 251, doi:10.1186/bf03353102.Dst
    189. von Savigny, C., M. Sinnhuber, H. Bovensmann, J. P. Burrows, M.-B. Kallenrode, and M. Schwartz (2007), On the disappearance of noctilucent clouds during the January 2005 solar proton events, Geophys. Res. Lett., 34(2), L02805, doi:10.1029/2006gl028106.Dst
    190. Vršnak, B., M. Temmer, and A. M. Veronig (2007), Coronal Holes and Solar Wind High-Speed Streams: I. Forecasting the Solar Wind Parameters, Sol. Phys., 240(2), 315, doi:10.1007/s11207-007-0285-8.Dst
    191. Vršnak, B., M. Temmer, and A. M. Veronig (2007), Coronal Holes and Solar Wind High-Speed Streams: II. Forecasting the Geomagnetic Effects, Sol. Phys., 240(2), 331, doi:10.1007/s11207-007-0311-x.Dst
    192. Walsh, A. P., A. N. Fazakerley, R. J. Wilson, I. V. Alexeev, P. D. Henderson, C. J. Owen, E. Lucek, C. Carr, and I. Dandouras (2007), Near-simultaneous magnetotail flux rope observations with Cluster and Double Star, Ann. Geophys., 25(8), 1887, doi:10.5194/angeo-25-1887-2007.AE
    193. Walsh, B. M., T. A. Fritz, N. M. Lender, J. Chen, and K. E. Whitaker (2007), Energetic particles observed by ISEE-1 and ISEE-2 in a cusp diamagnetic cavity on 29 September 1978, Ann. Geophys., 25(12), 2633, doi:10.5194/angeo-25-2633-2007.Dst
    194. Wang, C., J. B. Liu, Z. H. Huang, and J. D. Richardson (2007), Response of the magnetic field in the geosynchronous orbit to solar wind dynamic pressure pulses, J. Geophys. Res. Space Physics, 112(A12), A12210, doi:10.1029/2007ja012664.Dst
    195. Wang, Y., P. Ye, and S. Wang (2007), The Dependence of the Geoeffectiveness of Interplanetary Flux Rope on Its Orientation, with Possible Application to Geomagnetic Storm Prediction, Sol. Phys., 240(2), 373, doi:10.1007/s11207-006-0101-x.Dst
    196. Wanliss, J. A., and J. M. Weygand (2007), Power law burst lifetime distribution of the SYM-H index, Geophys. Res. Lett., 34(4), L04107, doi:10.1029/2006gl028235.SYM-H
    197. Wanliss, J. A., and P. Dobias (2007), Space storm as a phase transition, J. Atmos. Sol.-Terr. Phys., 69(6), 675, doi:10.1016/j.jastp.2007.01.001.DstAESYM-HSYM-D
    198. Warnant, R., I. Kutiev, P. Marinov, M. Bavier, and S. Lejeune (2007), Ionospheric and geomagnetic conditions during periods of degraded GPS position accuracy: 1. Monitoring variability in TEC which degrades the accuracy of Real-Time Kinematic GPS applications, Adv. Space Res., 39(5), 875, doi:10.1016/j.asr.2006.03.044.DstAE
    199. Wei, H. L., D. Q. Zhu, S. A. Billings, and M. A. Balikhin (2007), Forecasting the geomagnetic activity of the Dst index using multiscale radial basis function networks, Adv. Space Res., 40(12), 1863, doi:10.1016/j.asr.2007.02.080.Dst
    200. Wei, X. H., et al. (2007), Cluster observations of waves in the whistler frequency range associated with magnetic reconnection in the Earth's magnetotail, J. Geophys. Res. Space Physics, 112(A10), A10225, doi:10.1029/2006ja011771.AE
    201. Weigel, R. S. (2007), Solar wind time history contribution to the day-of-year variation in geomagnetic activity, J. Geophys. Res. Space Physics, 112(A10), A10207, doi:10.1029/2007ja012324.AE
    202. Wing, S., J. W. Gjerloev, J. R. Johnson, and R. A. Hoffman (2007), Substorm plasma sheet ion pressure profiles, Geophys. Res. Lett., 34(16), L16110, doi:10.1029/2007gl030453.AE
    203. Woodfield, E. E., M. W. Dunlop, R. Holme, J. A. Davies, and M. A. Hapgood (2007), A comparison of Cluster magnetic data with the Tsyganenko 2001 model, J. Geophys. Res. Space Physics, 112(A6), A06248, doi:10.1029/2006ja012217.SYM-HSYM-D
    204. Wu, C.-C., and R. P. Lepping (2007), Comparison of the Characteristics of Magnetic Clouds and Magnetic Cloud-Like Structures for the Events of 1995 - 2003, Sol. Phys., 242(1-2), 159, doi:10.1007/s11207-007-0323-6.Dst
    205. Xiong, M., H. Zheng, S. T. Wu, Y. Wang, and S. Wang (2007), Magnetohydrodynamic simulation of the interaction between two interplanetary magnetic clouds and its consequent geoeffectiveness, J. Geophys. Res. Space Physics, 112(A11), A11103, doi:10.1029/2007ja012320.Dst
    206. Xu, J. S., J. Zhu, and L. Li (2007), Effects of a major storm on GPS amplitude scintillations and phase fluctuations at Wuhan in China, Adv. Space Res., 39(8), 1318, doi:10.1016/j.asr.2007.03.004.DstAE
    207. Yahnin, A., and T. Yahnina (2007), Energetic proton precipitation related to ion cyclotron waves, J. Atmos. Sol.-Terr. Phys., 69(14), 1690, doi:10.1016/j.jastp.2007.02.010.Dst
    208. Yuan, Z., and X. Deng (2007), Effects of continuous solar wind pressure variations on the long-lasting penetration of the interplanetary electric field during southward interplanetary magnetic field, Adv. Space Res., 39(8), 1342, doi:10.1016/j.asr.2007.02.033.Dst
    209. Yue, X., W. Wan, L. Liu, F. Zheng, J. Lei, B. Zhao, G. Xu, S.-R. Zhang, and J. Zhu (2007), Data assimilation of incoherent scatter radar observation into a one-dimensional midlatitude ionospheric model by applying ensemble Kalman filter, Radio Sci., 42(6), RS6006, doi:10.1029/2007rs003631.Dst
    210. Yugo, H., and T. Iyemori (2007), Symplectic tracing of high-energy charged particles in the inner magnetosphere, J. Geophys. Res. Space Physics, 112(A6), A06243, doi:10.1029/2006ja011601.Dst
    211. Zhang, J., et al. (2007), Solar and interplanetary sources of major geomagnetic storms (Dst <= -100 nT) during 1996-2005, J. Geophys. Res. Space Physics, 112(A10), A10102, doi:10.1029/2007ja012321.Dst
    212. Zhang, J., et al. (2007), Understanding storm-time ring current development through data-model comparisons of a moderate storm, J. Geophys. Res. Space Physics, 112(A4), A04208, doi:10.1029/2006ja011846.DstSYM-H
    213. Zhang, Y. C., Z. X. Liu, C. Shen, A. Fazakerley, M. Dunlop, H. Réme, E. Lucek, A. P. Walsh, and L. Yao (2007), The magnetic structure of an earthward-moving flux rope observed by Cluster in the near-tail, Ann. Geophys., 25(7), 1471, doi:10.5194/angeo-25-1471-2007.AE
    214. Zhu, D., S. A. Billings, M. A. Balikhin, S. Wing, and H. Alleyne (2007), Multi-input data derived Dst model, J. Geophys. Res. Space Physics, 112(A6), A06205, doi:10.1029/2006ja012079.Dst
    215. Zolotukhina, N., and J. Cao (2007), Transformation of structured Pc1 into IPDP-like emission under enhanced magnetospheric convection: A case study, J. Atmos. Sol.-Terr. Phys., 69(14), 1668, doi:10.1016/j.jastp.2007.01.016.DstAESYM-HSYM-DASY-HASY-D
    216. Zolotukhina, N., V. Pilipenko, M. Engebretson, and A. Rodger (2007), Response of the inner and outer magnetosphere to solar wind density fluctuations during the recovery phase of a moderate magnetic storm, J. Atmos. Sol.-Terr. Phys., 69(14), 1707, doi:10.1016/j.jastp.2007.02.011.AESYM-HSYM-DASY-HASY-D
    217. Zuo, P. B., F. S. Wei, X. S. Feng, and F. Yang (2007), The Relationship between the Magnetic Cloud Boundary Layer and the Substorm Expansion Phase, Sol. Phys., 242(1-2), 167, doi:10.1007/s11207-007-0407-3.DstAE

    2006 248 papers↑ top

    1. Abel, G. A., M. P. Freeman, A. J. Smith, and G. D. Reeves (2006), Association of substorm chorus events with drift echoes, J. Geophys. Res. Space Physics, 111(A11), A11220, doi:10.1029/2006ja011860.AE
    2. Abidin Abdul Rashid, Z., M. Awad Momani, S. Sulaiman, M. Alauddin Mohd Ali, B. Yatim, G. Fraser, and N. Sato (2006), GPS ionospheric TEC measurement during the 23rd November 2003 total solar eclipse at Scott Base Antarctica, J. Atmos. Sol.-Terr. Phys., 68(11), 1219, doi:10.1016/j.jastp.2006.03.006.Dst
    3. Adachi, H., T. Sakurai, and K. Marubashi (2006), Geomagnetic effects of high-density plasma with southward magnetic field in the interplanetary coronal mass ejection observed on May 2–3, 1998, Earth Planets Space, 58(3), 315, doi:10.1186/bf03351927.Dst
    4. Afraimovich, E. L., E. I. Astafieva, S. V. Voeykov, B. Tsegmed, A. P. Potekhin, and J. L. Rasson (2006), An investigation of the correlation between ionospheric and geomagnetic variations using data from the GPS and INTERMAGNET networks, Adv. Space Res., 38(11), 2332, doi:10.1016/j.asr.2006.01.012.DstAE
    5. Aksnes, A., J. Stadsnes, N. ØStgaard, G. A. Germany, K. Oksavik, R. R. Vondrak, A. Brekke, and U. P. LøVhaug (2006), Height profiles of the ionospheric electron density derived using space-based remote sensing of UV and X ray emissions and EISCAT radar data: A ground-truth experiment, J. Geophys. Res. Space Physics, 111(A2), A02301, doi:10.1029/2005ja011331.AE
    6. Alex, S., S. Mukherjee, and G. S. Lakhina (2006), Geomagnetic signatures during the intense geomagnetic storms of 29 October and 20 November 2003, J. Atmos. Sol.-Terr. Phys., 68(7), 769, doi:10.1016/j.jastp.2006.01.003.AESYM-HSYM-D
    7. Alexeev, I. I. (2006), Solar Wind Control of the Magnetospheric and Auroral Dynamics, Space Sci. Rev., 122(1-4), 55, doi:10.1007/s11214-006-7021-9.DstAE
    8. Alves, M. V., E. Echer, and W. D. Gonzalez (2006), Geoeffectiveness of corotating interaction regions as measured by Dst index, J. Geophys. Res. Space Physics, 111(A7), A07S05, doi:10.1029/2005ja011379.Dst
    9. Aminaei, A., F. Honary, A. J. Kavanagh, E. Spanswick, and A. Viljanen (2006), Characteristics of night-time absorption spike events, Ann. Geophys., 24(7), 1887, doi:10.5194/angeo-24-1887-2006.AE
    10. Aoki, T. (2006), Influence of the interplanetary magnetic field on the ring current injection rate, Earth Planets Space, 58(5), 679, doi:10.1186/bf03351965.DstAE
    11. Balasis, G., I. A. Daglis, P. Kapiris, M. Mandea, D. Vassiliadis, and K. Eftaxias (2006), From pre-storm activity to magnetic storms: a transition described in terms of fractal dynamics, Ann. Geophys., 24(12), 3557, doi:10.5194/angeo-24-3557-2006.DstSYM-H
    12. Batista, I. S., M. A. Abdu, J. R. Souza, F. Bertoni, M. T. Matsuoka, P. O. Camargo, and G. J. Bailey (2006), Unusual early morning development of the equatorial anomaly in the Brazilian sector during the Halloween magnetic storm, J. Geophys. Res. Space Physics, 111(A5), A05307, doi:10.1029/2005ja011428.DstAESYM-HSYM-DASY-HASY-D
    13. Belehaki, A., I. Tsagouri, G. Michalareas, and T. Herekakis (2006), F region drift observations from Athens Digisonde, Radio Sci., 41(6), RS6S35, doi:10.1029/2005rs003322.AE
    14. Bertoni, F., I. S. Batista, M. A. Abdu, B. W. Reinisch, and E. A. Kherani (2006), A comparison of ionospheric vertical drift velocities measured by Digisonde and Incoherent Scatter Radar at the magnetic equator, J. Atmos. Sol.-Terr. Phys., 68(6), 669, doi:10.1016/j.jastp.2006.01.002.AE
    15. Berube, D., M. B. Moldwin, and M. Ahn (2006), Computing magnetospheric mass density from field line resonances in a realistic magnetic field geometry, J. Geophys. Res. Space Physics, 111(A8), A08206, doi:10.1029/2005ja011450.Dst
    16. Bhatnagar, V. P., A. Tan, and R. Ramachandaran (2006), On the response of the exospheric temperature to the auroral heating impulse during geomagnetic disturbances, J. Atmos. Sol.-Terr. Phys., 68(11), 1237, doi:10.1016/j.jastp.2006.04.002.AE
    17. Bishop, R. L., N. Aponte, G. D. Earle, M. Sulzer, M. F. Larsen, and G. S. Peng (2006), Arecibo observations of ionospheric perturbations associated with the passage of Tropical Storm Odette, J. Geophys. Res. Space Physics, 111(A11), A11320, doi:10.1029/2006ja011668.Dst
    18. Blagoveshchensky, D. V., J. W. MacDougall, and A. V. Piatkova (2006), Ionospheric effects preceding the October 2003 Halloween storm, J. Atmos. Sol.-Terr. Phys., 68(7), 821, doi:10.1016/j.jastp.2005.10.017.AE
    19. Blagoveshchensky, D. V., T. D. Borisova, and J. W. MacDougall (2006), Irregular HF radio propagation on a subauroral path during magnetospheric substorms, Ann. Geophys., 24(7), 1839, doi:10.5194/angeo-24-1839-2006.AE
    20. Bogdanova, Y. V., C. J. Owen, A. N. Fazakerley, B. Klecker, and H. Rème (2006), Statistical study of the location and size of the electron edge of the Low-Latitude Boundary Layer as observed by Cluster at mid-altitudes, Ann. Geophys., 24(10), 2645, doi:10.5194/angeo-24-2645-2006.AE
    21. Bombardieri, D. J., M. L. Duldig, K. J. Michael, and J. E. Humble (2006), Relativistic Proton Production during the 2000 July 14 Solar Event: The Case for Multiple Source Mechanisms, Astrophys. J., 644(1), 565, doi:10.1086/501519.Dst
    22. Borovsky, J. E., and J. T. Steinberg (2006), The ``calm before the storm'' in CIR/magnetosphere interactions: Occurrence statistics, solar wind statistics, and magnetospheric preconditioning, J. Geophys. Res. Space Physics, 111(A7), A07S10, doi:10.1029/2005ja011397.DstAE
    23. Borovsky, J. E., and M. H. Denton (2006), Differences between CME-driven storms and CIR-driven storms, J. Geophys. Res. Space Physics, 111(A7), A07S08, doi:10.1029/2005ja011447.Dst
    24. Borovsky, J. E., and M. H. Denton (2006), Effect of plasmaspheric drainage plumes on solar-wind/magnetosphere coupling, Geophys. Res. Lett., 33(20), L20101, doi:10.1029/2006gl026519.AE
    25. Bortnik, J., R. M. Thorne, T. P. O'Brien, J. C. Green, R. J. Strangeway, Y. Y. Shprits, and D. N. Baker (2006), Observation of two distinct, rapid loss mechanisms during the 20 November 2003 radiation belt dropout event, J. Geophys. Res. Space Physics, 111(A12), A12216, doi:10.1029/2006ja011802.Dst
    26. Burke, W. J., C. Y. Huang, and F. J. Rich (2006), Energetics of the April 2000 magnetic superstorm observed by DMSP, Adv. Space Res., 38(2), 239, doi:10.1016/j.asr.2005.07.085.DstAE
    27. Cao, J. B., et al. (2006), Joint observations by Cluster satellites of bursty bulk flows in the magnetotail, J. Geophys. Res. Space Physics, 111(A4), A04206, doi:10.1029/2005ja011322.AE
    28. Chakrabarty, D., R. Sekar, R. Narayanan, A. K. Patra, and C. V. Devasia (2006), Effects of interplanetary electric field on the development of an equatorial spread F event, J. Geophys. Res. Space Physics, 111(A12), A12316, doi:10.1029/2006ja011884.DstSYM-H
    29. Chang, T., S. W. Y. Tam, and C.-C. Wu (2006), Complexity in Space Plasmas - A Brief Review, Space Sci. Rev., 122(1-4), 281, doi:10.1007/s11214-006-5957-4.AE
    30. Chen, J., and A. S. Sharma (2006), Modeling and prediction of the magnetospheric dynamics during intense geospace storms, J. Geophys. Res. Space Physics, 111(A4), A04209, doi:10.1029/2005ja011359.AE
    31. Chen, M. W., S. Liu, M. Schulz, J. L. Roeder, and L. R. Lyons (2006), Magnetically self-consistent ring current simulations during the 19 October 1998 storm, J. Geophys. Res. Space Physics, 111(A11), A11S15, doi:10.1029/2006ja011620.Dst
    32. Chen, S.-H., and T. E. Moore (2006), Magnetospheric convection and thermal ions in the dayside outer magnetosphere, J. Geophys. Res. Space Physics, 111(A3), A03215, doi:10.1029/2005ja011084.Dst
    33. Chen, Y., R. H. W. Friedel, and G. D. Reeves (2006), Phase space density distributions of energetic electrons in the outer radiation belt during two Geospace Environment Modeling Inner Magnetosphere/Storms selected storms, J. Geophys. Res. Space Physics, 111(A11), A11S04, doi:10.1029/2006ja011703.Dst
    34. Chian, A. C.-L., Y. Kamide, E. L. Rempel, and W. M. Santana (2006), On the chaotic nature of solar-terrestrial environment: Interplanetary Alfvén intermittency, J. Geophys. Res. Space Physics, 111(A7), A07S03, doi:10.1029/2005ja011396.AE
    35. Crowley, G., T. J. Immel, C. L. Hackert, J. Craven, and R. G. Roble (2006), Effect of IMF BY on thermospheric composition at high and middle latitudes: 1. Numerical experiments, J. Geophys. Res. Space Physics, 111(A10), A10311, doi:10.1029/2005ja011371.AE
    36. D'Amicis, R., R. Bruno, B. Bavassano, V. Carbone, and L. Sorriso-Valvo (2006), On the scaling of waiting-time distributions of the negative IMF Bz component, Ann. Geophys., 24(10), 2735, doi:10.5194/angeo-24-2735-2006.AE
    37. Dabas, R. S., R. M. Das, V. K. Vohra, and C. V. Devasia (2006), Space weather impact on the equatorial and low latitude F-region ionosphere over India, Ann. Geophys., 24(1), 97, doi:10.5194/angeo-24-97-2006.Dst
    38. Daglis, I. A. (2006), Ring Current Dynamics, Space Sci. Rev., 124(1-4), 183, doi:10.1007/s11214-006-9104-z.DstAE
    39. Dal Lago, A., et al. (2006), The 17-22 October (1999) solar-interplanetary-geomagnetic event: Very intense geomagnetic storm associated with a pressure balance between interplanetary coronal mass ejection and a high-speed stream, J. Geophys. Res. Space Physics, 111(A7), A07S14, doi:10.1029/2005ja011394.Dst
    40. Datlowe, D. (2006), Differences between transmitter precipitation peaks and storm injection peaks in low-altitude energetic electron spectra, J. Geophys. Res. Space Physics, 111(A12), A12202, doi:10.1029/2006ja011957.Dst
    41. Davies, J. A., et al. (2006), Energetic electron signatures in an active magnetotail plasma sheet, Adv. Space Res., 38(8), 1608, doi:10.1016/j.asr.2006.02.012.AE
    42. den, M., et al. (2006), Real-time Earth magnetosphere simulator with three-dimensional magnetohydrodynamic code, Space Weather, 4(6), 06004, doi:10.1029/2004sw000100.AE
    43. Dent, Z. C., I. R. Mann, J. Goldstein, F. W. Menk, and L. G. Ozeke (2006), Plasmaspheric depletion, refilling, and plasmapause dynamics: A coordinated ground-based and IMAGE satellite study, J. Geophys. Res. Space Physics, 111(A3), A03205, doi:10.1029/2005ja011046.Dst
    44. Denton, M. H., J. E. Borovsky, R. M. Skoug, M. F. Thomsen, B. Lavraud, M. G. Henderson, R. L. McPherron, J. C. Zhang, and M. W. Liemohn (2006), Geomagnetic storms driven by ICME- and CIR-dominated solar wind, J. Geophys. Res. Space Physics, 111(A7), A07S07, doi:10.1029/2005ja011436.Dst
    45. Denton, R. E., K. Takahashi, I. A. Galkin, P. A. Nsumei, X. Huang, B. W. Reinisch, R. R. Anderson, M. K. Sleeper, and W. J. Hughes (2006), Distribution of density along magnetospheric field lines, J. Geophys. Res. Space Physics, 111(A4), A04213, doi:10.1029/2005ja011414.Dst
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    47. Earle, G. D., A. M. Musumba, and J. P. McClure (2006), A global study of nighttime midlatitude topside spread echoes, J. Geophys. Res. Space Physics, 111(A11), A11306, doi:10.1029/2006ja011614.DstAE
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    239. Zhang, J., M. W. Liemohn, J. U. Kozyra, M. F. Thomsen, H. A. Elliott, and J. M. Weygand (2006), A statistical comparison of solar wind sources of moderate and intense geomagnetic storms at solar minimum and maximum, J. Geophys. Res. Space Physics, 111(A1), A01104, doi:10.1029/2005ja011065.Dst
    240. Zhang, J., M. W. Liemohn, M. F. Thomsen, J. U. Kozyra, M. H. Denton, and J. E. Borovsky (2006), A statistical comparison of hot-ion properties at geosynchronous orbit during intense and moderate geomagnetic storms at solar maximum and minimum, J. Geophys. Res. Space Physics, 111(A7), A07206, doi:10.1029/2005ja011559.Dst
    241. Zhang, Y., and L. J. Paxton (2006), Dayside convection aligned auroral arcs, Geophys. Res. Lett., 33(13), L13107, doi:10.1029/2006gl026388.Dst
    242. Zhang, Y., L. J. Paxton, and A. T. Y. Lui (2006), An unusual nightside distortion of the auroral oval: TIMED/GUVI and IMAGE/FUV observations, J. Geophys. Res. Space Physics, 111(A8), A08203, doi:10.1029/2005ja011217.DstAESYM-H
    243. Zhang, Y., L. J. Paxton, J. U. Kozyra, H. Kil, and P. C. Brandt (2006), Nightside thermospheric FUV emissions due to energetic neutral atom precipitation during magnetic superstorms, J. Geophys. Res. Space Physics, 111(A9), A09307, doi:10.1029/2005ja011152.Dst
    244. Zhao, X., X. Feng, and C.-C. Wu (2006), Characteristics of solar flares associated with interplanetary shock or nonshock events at Earth, J. Geophys. Res. Space Physics, 111(A9), A09103, doi:10.1029/2006ja011784.Dst
    245. Zheng, Y., A. T. Y. Lui, M.-C. Fok, B. J. Anderson, P. C. Brandt, T. J. Immel, and D. G. Mitchell (2006), Relationship between Region 2 field-aligned current and the ring current: Model results, J. Geophys. Res. Space Physics, 111(A11), A11S06, doi:10.1029/2006ja011603.Dst
    246. Zhu, D., S. A. Billings, M. Balikhin, S. Wing, and D. Coca (2006), Data derived continuous time model for the Dst dynamics, Geophys. Res. Lett., 33(4), L04101, doi:10.1029/2005gl025022.Dst
    247. Zuluaga, C. A., E. S. Beiser, J. Chen, and T. A. Fritz (2006), Implications of unusual pitch-angle distributions observed by ISEE-1 and 2, Ann. Geophys., 24(11), 3099, doi:10.5194/angeo-24-3099-2006.AE
    248. Zurbuchen, T. H., and I. G. Richardson (2006), In-Situ Solar Wind and Magnetic Field Signatures of Interplanetary Coronal Mass Ejections, Space Sci. Rev., 123(1-3), 31, doi:10.1007/s11214-006-9010-4.Dst

    2005 267 papers↑ top

    1. Abdu, M. A., I. S. Batista, A. J. Carrasco, and C. G. M. Brum (2005), South Atlantic magnetic anomaly ionization: A review and a new focus on electrodynamic effects in the equatorial ionosphere, J. Atmos. Sol.-Terr. Phys., 67, 1643, doi:10.1016/j.jastp.2005.01.014.AE
    2. Ahn, B.-H., G. X. Chen, W. Sun, J. W. Gjerloev, Y. Kamide, J. B. Sigwarth, and L. A. Frank (2005), Equatorward expansion of the westward electrojet during magnetically disturbed periods, J. Geophys. Res. Space Physics, 110(A1), A01305, doi:10.1029/2004ja010553.DstAE
    3. Akasofu, S.-I., and Y. Kamide (2005), Comment on ``The extreme magnetic storm of 1-2 September 1859'' by B. T. Tsurutani, W. D. Gonzalez, G. S. Lakhina, and S. Alex, J. Geophys. Res. Space Physics, 110(A9), A09226, doi:10.1029/2005ja011005.Dst
    4. Akasofu, S.-I., H. Watanabe, and T. Saito (2005), A New Morphology of Solar Activity and Recurrent Geomagnetic Disturbances: The Late-Declining Phase of the Sunspot Cycle, Space Sci. Rev., 120(1-2), 27, doi:10.1007/s11214-005-8052-3.Dst
    5. Alex, S., B. M. Pathan, and G. S. Lakhina (2005), Response of the low latitude geomagnetic field to the major proton event of November 2001, Adv. Space Res., 36(12), 2434, doi:10.1016/j.asr.2004.01.026.SYM-H
    6. Amm, O., et al. (2005), Coordinated studies of the geospace environment using Cluster, satellite and ground-based data: an interim review, Ann. Geophys., 23(6), 2129, doi:10.5194/angeo-23-2129-2005.AE
    7. Anagnostopoulos, G. C., D. Efthymiadis, E. T. Sarris, and S. M. Krimigis (2005), Evidence and features of magnetospheric particle leakage on days 30-36, 1995: Wind, Geotail, and IMP 8 observations compared, J. Geophys. Res. Space Physics, 110(A10), A10203, doi:10.1029/2004ja010827.AE
    8. Anderson, B. J., S.-I. Ohtani, H. Korth, and A. Ukhorskiy (2005), Storm time dawn-dusk asymmetry of the large-scale Birkeland currents, J. Geophys. Res. Space Physics, 110(A12), A12220, doi:10.1029/2005ja011246.SYM-HASY-H
    9. Anh, V. V., Z. G. Yu, J. A. Wanliss, and S. M. Watson (2005), Prediction of magnetic storm events using the Dst index, Nonlinear Processes Geophys., 12(6), 799, doi:10.5194/npg-12-799-2005.DstSYM-H
    10. Araujo-Pradere, E. A., T. J. Fuller-Rowell, M. V. Codrescu, and D. Bilitza (2005), Characteristics of the ionospheric variability as a function of season, latitude, local time, and geomagnetic activity, Radio Sci., 40(5), RS5009, doi:10.1029/2004rs003179.Dst
    11. Ashour-Abdalla, M., J. M. Bosqued, M. El-Alaoui, V. Peroomian, L. M. Zelenyi, R. J. Walker, and J. Wright (2005), A stochastic sea: The source of plasma sheet boundary layer ion structures observed by Cluster, J. Geophys. Res. Space Physics, 110(A12), A12221, doi:10.1029/2005ja011183.AE
    12. Asikainen, T., and K. Mursula (2005), Energetic particle fluxes in the exterior cusp and the high-latitude dayside magnetosphere: statistical results from the Cluster/RAPID instrument, Ann. Geophys., 23(6), 2217, doi:10.5194/angeo-23-2217-2005.AE
    13. Asikainen, T., and K. Mursula (2005), Filling the South Atlantic anomaly by energetic electrons during a great magnetic storm, Geophys. Res. Lett., 32(16), L16102, doi:10.1029/2005gl023634.Dst
    14. Baddeley, L. J., T. K. Yeoman, and D. M. Wright (2005), HF doppler sounder measurements of the ionospheric signatures of small scale ULF waves, Ann. Geophys., 23(5), 1807, doi:10.5194/angeo-23-1807-2005.Dst
    15. Baker, D. N., R. L. McPherron, and M. W. Dunlop (2005), Cluster observations of magnetospheric substorm behavior in the near- and mid-tail region, Adv. Space Res., 36(10), 1809, doi:10.1016/j.asr.2004.04.021.AE
    16. Barker, A. B., X. Li, and R. S. Selesnick (2005), Modeling the radiation belt electrons with radial diffusion driven by the solar wind, Space Weather, 3(10), S10003, doi:10.1029/2004sw000118.Dst
    17. Basu, S., et al. (2005), Two components of ionospheric plasma structuring at midlatitudes observed during the large magnetic storm of October 30, 2003, Geophys. Res. Lett., 32(12), L12S06, doi:10.1029/2004gl021669.DstSYM-H
    18. Basu, S., S. Basu, K. M. Groves, E. MacKenzie, M. J. Keskinen, and F. J. Rich (2005), Near-simultaneous plasma structuring in the midlatitude and equatorial ionosphere during magnetic superstorms, Geophys. Res. Lett., 32(12), L12S05, doi:10.1029/2004gl021678.DstAESYM-H
    19. Belov, A., L. Baisultanova, E. Eroshenko, H. Mavromichalaki, V. Yanke, V. Pchelkin, C. Plainaki, and G. Mariatos (2005), Magnetospheric effects in cosmic rays during the unique magnetic storm on November 2003, J. Geophys. Res. Space Physics, 110(A9), A09S20, doi:10.1029/2005ja011067.Dst
    20. Berube, D., M. B. Moldwin, S. F. Fung, and J. L. Green (2005), A plasmaspheric mass density model and constraints on its heavy ion concentration, J. Geophys. Res. Space Physics, 110(A4), A04212, doi:10.1029/2004ja010684.Dst
    21. Birch, M. J., J. K. Hargreaves, A. Senior, and B. J. I. Bromage (2005), Variations in cutoff latitude during selected solar energetic proton events, J. Geophys. Res. Space Physics, 110(A7), A07221, doi:10.1029/2004ja010833.DstSYM-HSYM-D
    22. Blagoveshchensky, D. V., M. Lester, V. A. Kornienko, I. I. Shagimuratov, A. J. Stocker, and E. M. Warrington (2005), Observations by the CUTLASS radar, HF Doppler, oblique ionospheric sounding, and TEC from GPS during a magnetic storm, Ann. Geophys., 23(5), 1697, doi:10.5194/angeo-23-1697-2005.DstAE
    23. Blagoveshchensky, D. V., V. M. Vystavnoi, and M. A. Sergeeva (2005), HF radio propagation through the auroral oval during substorms, J. Atmos. Sol.-Terr. Phys., 67(16), 1618, doi:10.1016/j.jastp.2005.08.022.AE
    24. Blelly, P.-L., C. Lathuillère, B. Emery, J. Lilensten, J. Fontanari, and D. Alcaydé (2005), An extended TRANSCAR model including ionospheric convection: simulation of EISCAT observations using inputs from AMIE, Ann. Geophys., 23(2), 419, doi:10.5194/angeo-23-419-2005.AE
    25. Blockx, C., J.-C. GéRard, M. Meurant, B. Hubert, and V. Coumans (2005), Far ultraviolet remote sensing of the isotropy boundary and magnetotail stretching, J. Geophys. Res. Space Physics, 110(A11), A11215, doi:10.1029/2005ja011103.AE
    26. Blomberg, L. G., J. A. Cumnock, I. I. Alexeev, E. S. Belenkaya, S. Y. Bobrovnikov, and V. V. Kalegaev (2005), Transpolar aurora: time evolution, associated convection patterns, and a possible cause, Ann. Geophys., 23(5), 1917, doi:10.5194/angeo-23-1917-2005.DstAE
    27. Bobrovnikov, S. Y., I. I. Alexeev, E. S. Belenkaya, V. V. Kalegaev, C.-R. Clauer, and Y. I. Feldstein (2005), Case study of September 24-26, 1998 magnetic storm, Adv. Space Res., 36(12), 2428, doi:10.1016/j.asr.2003.11.023.AE
    28. Bolzan, M. J. A., Y. Sahai, P. R. Fagundes, R. R. Rosa, F. M. Ramos, and J. R. Abalde (2005), Intermittency analysis of geomagnetic storm time-series observed in Brazil, J. Atmos. Sol.-Terr. Phys., 67(14), 1365, doi:10.1016/j.jastp.2005.06.008.Dst
    29. Borälv, E., et al. (2005), Correlation between ground-based observations of substorm signatures and magnetotail dynamics, Ann. Geophys., 23(3), 997, doi:10.5194/angeo-23-997-2005.Dst
    30. Boudouridis, A., E. Zesta, L. R. Lyons, P. C. Anderson, and D. Lummerzheim (2005), Enhanced solar wind geoeffectiveness after a sudden increase in dynamic pressure during southward IMF orientation, J. Geophys. Res. Space Physics, 110(A5), A05214, doi:10.1029/2004ja010704.AE
    31. Bouhram, M., et al. (2005), Survey of energetic O+ ions near the dayside mid-latitude magnetopause with Cluster, Ann. Geophys., 23(4), 1281, doi:10.5194/angeo-23-1281-2005.Dst
    32. Bruntz, R. J., R. E. Lopez, N. E. Turner, M. J. Wiltberger, and J. G. Lyon (2005), Ring current development in MHD simulations, Adv. Space Res., 36(10), 1864, doi:10.1016/j.asr.2005.07.082.Dst
    33. Buresova, D. (2005), Effects of geomagnetic storms on the bottomside ionospheric F region, Adv. Space Res., 35(3), 429, doi:10.1016/j.asr.2005.03.032.Dst
    34. Bučík, R., K. Kudela, A. V. Dmitriev, S. N. Kuznetsov, I. N. Myagkova, and S. P. Ryumin (2005), Review of electron fluxes within the local drift loss cone: Measurements on CORONAS-I, Adv. Space Res., 36(10), 1979, doi:10.1016/j.asr.2003.03.077.Dst
    35. Cander, L. R., and S. J. Mihajlovic (2005), Ionospheric spatial and temporal variations during the 29 31 October 2003 storm, J. Atmos. Sol.-Terr. Phys., 67, 1118, doi:10.1016/j.jastp.2005.02.020.Dst
    36. Cao, J. B., et al. (2005), First results of Chinese particle instruments in the Double Star Program, Ann. Geophys., 23(8), 2775, doi:10.5194/angeo-23-2775-2005.DstAE
    37. Chapman, S. C., B. Hnat, G. Rowlands, and N. W. Watkins (2005), Scaling collapse and structure functions: identifying self-affinity in finite length time series, Nonlinear Processes Geophys., 12(6), 767, doi:10.5194/npg-12-767-2005.AE
    38. Chen, J., T. A. Fritz, and R. B. Sheldon (2005), Multiple spacecraft observations of energetic ions during a high solar wind pressure event, J. Geophys. Res. Space Physics, 110(A11), A11212, doi:10.1029/2005ja011043.AE
    39. Chen, M. W., M. Schulz, P. C. Anderson, G. Lu, G. Germany, and M. Wüest (2005), Storm time distributions of diffuse auroral electron energy and X-ray flux: Comparison of drift-loss simulations with observations, J. Geophys. Res. Space Physics, 110(A3), A03210, doi:10.1029/2004ja010725.Dst
    40. Cheng, C.-C., C. T. Russell, G. D. Reeves, M. Connors, and M. B. Moldwin (2005), On the relationships between double-onset substorm, pseudobreakup, and IMF variation: The 4 September 1999 event, J. Geophys. Res. Space Physics, 110(A7), A07201, doi:10.1029/2004ja010778.AE
    41. Chi, P. J., C. T. Russell, J. C. Foster, M. B. Moldwin, M. J. Engebretson, and I. R. Mann (2005), Density enhancement in plasmasphere-ionosphere plasma during the 2003 Halloween Superstorm: Observations along the 330th magnetic meridian in North America, Geophys. Res. Lett., 32(3), L03S07, doi:10.1029/2004gl021722.Dst
    42. Coco, I., E. Amata, M. F. Marcucci, M. de Laurentis, J. P. Villain, C. Hanuise, and M. Candidi (2005), Effects on SuperDARN HF radar echoes of sudden impulses of solar wind dynamic pressure, Ann. Geophys., 23(5), 1771, doi:10.5194/angeo-23-1771-2005.AE
    43. Consolini, G., and P. De Michelis (2005), Local intermittency measure analysis of AE index: The directly driven and unloading component, Geophys. Res. Lett., 32(5), L05101, doi:10.1029/2004gl022063.AE
    44. Correia, E., and R. V. de Souza (2005), Identification of solar sources of major geomagnetic storms, J. Atmos. Sol.-Terr. Phys., 67, 1702, doi:10.1016/j.jastp.2005.03.007.Dst
    45. Crosby, N. B., N. P. Meredith, A. J. Coates, and R. H. A. Iles (2005), Modelling the outer radiation belt as a complex system in a self-organised critical state, Nonlinear Processes Geophys., 12(6), 993, doi:10.5194/npg-12-993-2005.AE
    46. Dashora, N., and R. Pandey (2005), Observations in equatorial anomaly region of total electron content enhancements and depletions, Ann. Geophys., 23(7), 2449, doi:10.5194/angeo-23-2449-2005.Dst
    47. de Artigas, M. Z., and A. G. Elias (2005), The equatorial stratospheric QBO and geomagnetic activity, J. Atmos. Sol.-Terr. Phys., 67(14), 1280, doi:10.1016/j.jastp.2005.06.005.Dst
    48. DeJong, A. D., and C. R. Clauer (2005), Polar UVI images to study steady magnetospheric convection events: Initial results, Geophys. Res. Lett., 32(24), L24101, doi:10.1029/2005gl024498.AE
    49. DeMajistre, R., P. C. Brandt, T. J. Immel, J.-H. Yee, A. Dalgarno, L. J. Paxton, and V. Kharchenko (2005), Storm-time enhancement of mid-latitude ultraviolet emissions due to energetic neutral atom precipitation, Geophys. Res. Lett., 32(15), L15105, doi:10.1029/2005gl023059.DstAESYM-H
    50. Denton, M. H., V. K. Jordanova, M. G. Henderson, R. M. Skoug, M. F. Thomsen, C. J. Pollock, S. Zaharia, and H. O. Funsten (2005), Storm-time plasma signatures observed by IMAGE/MENA and comparison with a global physics-based model, Geophys. Res. Lett., 32(17), L17102, doi:10.1029/2005gl023353.Dst
    51. Diego, P., M. Storini, M. Parisi, and E. G. Cordaro (2005), AE index variability during corotating fast solar wind streams, J. Geophys. Res. Space Physics, 110(A6), A06105, doi:10.1029/2004ja010715.AE
    52. Dmitriev, A. V., J.-K. Chao, A. V. Suvorova, K. Ackerson, K. Ishisaka, Y. Kasaba, H. Kojima, and H. Matsumoto (2005), Indirect estimation of the solar wind conditions in 29-31 October 2003, J. Geophys. Res. Space Physics, 110(A9), A09S02, doi:10.1029/2004ja010806.DstSYM-H
    53. Dmitriev, A. V., N. B. Crosby, and J.-K. Chao (2005), Interplanetary sources of space weather disturbances in 1997 to 2000, Space Weather, 3(3), S03001, doi:10.1029/2004sw000104.Dst
    54. Dmitriev, A., J.-K. Chao, M. Thomsen, and A. Suvorova (2005), Geosynchronous magnetopause crossings on 29-31 October 2003, J. Geophys. Res. Space Physics, 110(A8), A08209, doi:10.1029/2004ja010582.SYM-H
    55. Dobreva, P. S., M. D. Kartalev, N. N. Shevyrev, and G. N. Zastenker (2005), Comparison of a new magnetosphere magnetosheath model with Interball-1 magnetosheath plasma measurements, Planet. Space Sci., 53(1-3), 117, doi:10.1016/j.pss.2004.09.035.Dst
    56. Dombeck, J., C. Cattell, J. R. Wygant, A. Keiling, and J. Scudder (2005), Alfvén waves and Poynting flux observed simultaneously by Polar and FAST in the plasma sheet boundary layer, J. Geophys. Res. Space Physics, 110(A12), A12S90, doi:10.1029/2005ja011269.Dst
    57. Domingues, M. O., O. Mendes, and A. M. da Costa (2005), On wavelet techniques in atmospheric sciences, Adv. Space Res., 35(5), 831, doi:10.1016/j.asr.2005.02.097.Dst
    58. Dorman, L. I., et al. (2005), Different space weather effects in anomalies of the high and low orbital satellites, Adv. Space Res., 36(12), 2530, doi:10.1016/j.asr.2004.05.007.DstAE
    59. Dorman, L. I., et al. (2005), Space weather and space anomalies, Ann. Geophys., 23(9), 3009, doi:10.5194/angeo-23-3009-2005.DstAE
    60. Ebihara, Y., M.-C. Fok, R. A. Wolf, M. F. Thomsen, and T. E. Moore (2005), Nonlinear impact of plasma sheet density on the storm-time ring current, J. Geophys. Res. Space Physics, 110(A2), A02208, doi:10.1029/2004ja010435.Dst
    61. Ebihara, Y., M.-C. Fok, S. Sazykin, M. F. Thomsen, M. R. Hairston, D. S. Evans, F. J. Rich, and M. Ejiri (2005), Ring current and the magnetosphere-ionosphere coupling during the superstorm of 20 November 2003, J. Geophys. Res. Space Physics, 110(A9), A09S22, doi:10.1029/2004ja010924.DstAESYM-H
    62. Echer, E., M. V. Alves, and W. D. Gonzalez (2005), A statistical study of magnetic cloud parameters and geoeffectiveness, J. Atmos. Sol.-Terr. Phys., 67(10), 839, doi:10.1016/j.jastp.2005.02.010.Dst
    63. Echer, E., W. D. Gonzalez, A. D. Lago, L. E. A. Vieira, F. L. Guarnieri, A. L. C. Gonzalez, and N. J. Schuch (2005), Interplanetary shocks and geomagnetic activity during solar maximum (2000) and solar minimum (1995-1996), Adv. Space Res., 36(12), 2318, doi:10.1016/j.asr.2003.04.076.Dst
    64. Echer, E., W. D. Gonzalez, B. T. Tsurutani, L. E. A. Vieira, M. V. Alves, and A. L. C. Gonzalez (2005), On the preferential occurrence of interplanetary shocks in July and November: Causes (solar wind annual dependence) and consequences (intense magnetic storms), J. Geophys. Res. Space Physics, 110(A2), A02101, doi:10.1029/2004ja010527.DstAE
    65. Echer, E., W. D. Gonzalez, F. L. Guarnieri, A. D. Lago, and L. E. A. Vieira (2005), Introduction to space weather, Adv. Space Res., 35(5), 855, doi:10.1016/j.asr.2005.02.098.AE
    66. Fagundes, P. R., V. G. Pillat, M. J. A. Bolzan, Y. Sahai, F. Becker-Guedes, J. R. Abalde, S. L. Aranha, and J. A. Bittencourt (2005), Observations of F layer electron density profiles modulated by planetary wave type oscillations in the equatorial ionospheric anomaly region, J. Geophys. Res. Space Physics, 110(A12), A12302, doi:10.1029/2005ja011115.Dst
    67. Fear, R. C., A. N. Fazakerley, C. J. Owen, A. D. Lahiff, E. A. Lucek, A. Balogh, L. M. Kistler, C. Mouikis, and H. Rème (2005), Cluster observations of bounday layer structure and a flux transfer event near the cusp, Ann. Geophys., 23(7), 2605, doi:10.5194/angeo-23-2605-2005.AE
    68. Fedrizzi, M., E. R. de Paula, R. B. Langley, A. Komjathy, I. S. Batista, and I. J. Kantor (2005), Study of the March 31, 2001 magnetic storm effects on the ionosphere using GPS data, Adv. Space Res., 36(3), 534, doi:10.1016/j.asr.2005.07.019.DstAESYM-H
    69. Fejer, B. G., J. R. Souza, A. S. Santos, and A. E. Costa Pereira (2005), Climatology of F region zonal plasma drifts over Jicamarca, J. Geophys. Res. Space Physics, 110(A12), A12310, doi:10.1029/2005ja011324.DstAE
    70. Feldstein, Y. I., et al. (2005), Self-consistent modeling of the large-scale distortions in the geomagnetic field during the 24-27 September 1998 major magnetic storm, J. Geophys. Res. Space Physics, 110(A11), A11214, doi:10.1029/2004ja010584.DstAE
    71. Figueiredo, S., et al. (2005), Temporal and spatial evolution of discrete auroral arcs as seen by Cluster, Ann. Geophys., 23(7), 2531, doi:10.5194/angeo-23-2531-2005.AE
    72. Forbes, J. M., G. Lu, S. Bruinsma, S. Nerem, and X. Zhang (2005), Thermosphere density variations due to the 15-24 April 2002 solar events from CHAMP/STAR accelerometer measurements, J. Geophys. Res. Space Physics, 110(A12), A12S27, doi:10.1029/2004ja010856.Dst
    73. Foster, J. C., et al. (2005), Multiradar observations of the polar tongue of ionization, J. Geophys. Res. Space Physics, 110(A9), A09S31, doi:10.1029/2004ja010928.Dst
    74. Gannon, J. L., X. Li, and M. Temerin (2005), Parametric study of shock-induced transport and energization of relativistic electrons in the magnetosphere, J. Geophys. Res. Space Physics, 110(A12), A12206, doi:10.1029/2004ja010679.Dst
    75. Ganushkina, N. Y., T. I. Pulkkinen, and T. Fritz (2005), Role of substorm-associated impulsive electric fields in the ring current development during storms, Ann. Geophys., 23(2), 579, doi:10.5194/angeo-23-579-2005.DstAE
    76. Ganushkina, N. Y., T. I. Pulkkinen, M. V. Kubyshkina, V. A. Sergeev, E. A. Lvova, T. A. Yahnina, A. G. Yahnin, and T. Fritz (2005), Proton isotropy boundaries as measured on mid- and low-altitude satellites, Ann. Geophys., 23(5), 1839, doi:10.5194/angeo-23-1839-2005.Dst
    77. Georgieva, K., B. Kirov, D. Atanassov, and A. Boneva (2005), Impact of magnetic clouds on the middle atmosphere and geomagnetic disturbances, J. Atmos. Sol.-Terr. Phys., 67(1-2), 163, doi:10.1016/j.jastp.2004.07.025.Dst
    78. Goldstein, J., B. R. Sandel, W. T. Forrester, M. F. Thomsen, and M. R. Hairston (2005), Global plasmasphere evolution 22-23 April 2001, J. Geophys. Res. Space Physics, 110(A12), A12218, doi:10.1029/2005ja011282.Dst
    79. Goldstein, J., J. L. Burch, B. R. Sandel, S. B. Mende, P. C:Son Brandt, and M. R. Hairston (2005), Coupled response of the inner magnetosphere and ionosphere on 17 April 2002, J. Geophys. Res. Space Physics, 110(A3), A03205, doi:10.1029/2004ja010712.DstAE
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    267. Šimůnek, J., J. Šafránková, Z. Němeček, and L. Přech (2005), Structure of the high-altitude cusp formed by the horizontal IMF, Adv. Space Res., 36(10), 1928, doi:10.1016/j.asr.2004.11.041.AE

    2004 205 papers↑ top

    1. Abel, G. A., A. J. Smith, N. P. Meredith, and R. R. Anderson (2004), Temporal evolution of substorm-enhanced whistler-mode waves: Relationship between space-based observations, ground-based observations, and energetic electrons, J. Geophys. Res. Space Physics, 109(A10), A10207, doi:10.1029/2004ja010407.AE
    2. Afraimovich, E., E. Astafieva, and S. Voyeikov (2004), Isolated ionospheric disturbances as deduced from global GPS network, Ann. Geophys., 22(1), 47, doi:10.5194/angeo-22-47-2004.Dst
    3. Aksnes, A., J. Stadsnes, G. Lu, N. Østgaard, R. Vondrak, D. Detrick, T. Rosenberg, G. Germany, and M. Schulz (2004), Effects of energetic electrons on the electrodynamics in the ionosphere, Ann. Geophys., 22(2), 475, doi:10.5194/angeo-22-475-2004.DstAE
    4. Anderson, P. C. (2004), Subauroral electric fields and magnetospheric convection during the April, 2002 geomagnetic storms, Geophys. Res. Lett., 31(11), L11801, doi:10.1029/2004gl019588.Dst
    5. Asnes, A., J. Stadsnes, J. Bjordal, N. Østgaard, D. Detrick, T. Rosenberg, and S. Haaland (2004), Pi2-pulsations observed in energetic electron precipitation and magnetic field in association with a substorm surge, Ann. Geophys., 22(6), 2097, doi:10.5194/angeo-22-2097-2004.DstAE
    6. Baker, D. N., S. G. Kanekal, and J. B. Blake (2004), Characterizing the Earth's outer Van Allen zone using a radiation belt content index, Space Weather, 2(2), S02003, doi:10.1029/2003sw000026.Dst
    7. Balan, N., et al. (2004), Simultaneous mesosphere/lower thermosphere and thermospheric F region observations during geomagnetic storms, J. Geophys. Res. Space Physics, 109(A4), A04308, doi:10.1029/2003ja009982.Dst
    8. Barabash, V., S. Kirkwood, A. Feofilov, and A. Kutepov (2004), Polar mesosphere summer echoes during the July 2000 solar protonevent, Ann. Geophys., 22(3), 759, doi:10.5194/angeo-22-759-2004.Dst
    9. Becker-Guedes, F., Y. Sahai, P. Fagundes, W. Lima, V. Pillat, J. Abalde, and J. Bittencourt (2004), Geomagnetic storm and equatorial spread-F, Ann. Geophys., 22(9), 3231, doi:10.5194/angeo-22-3231-2004.AE
    10. Beloff, N., P. Denisenko, I. Ivanov, O. Maltseva, M. Gough, S. Klimov, M. Nozdrachev, H. Alleyne, and I. Bates (2004), Storm time changes in total electron content in ionosphere measured by low orbiting topside sounder, Ann. Geophys., 22(8), 2741, doi:10.5194/angeo-22-2741-2004.Dst
    11. Biktash, L. (2004), Role of the magnetospheric and ionospheric currents in the generation of the equatorial scintillations during geomagnetic storms, Ann. Geophys., 22(9), 3195, doi:10.5194/angeo-22-3195-2004.DstAE
    12. Bogdanova, Y. V., et al. (2004), Investigation of the source region of ionospheric oxygen outflow in the cleft/cusp using multi-spacecraft observations by CIS onboard Cluster, Adv. Space Res., 34(11), 2459, doi:10.1016/j.asr.2004.02.014.Dst
    13. Boudouridis, A., E. Zesta, L. Lyons, P. Anderson, and D. Lummerzheim (2004), Magnetospheric reconnection driven by solar wind pressure fronts, Ann. Geophys., 22(4), 1367, doi:10.5194/angeo-22-1367-2004.Dst
    14. Bouhram, M., B. Klecker, G. Paschmann, H. Rème, A. Blagau, L. Kistler, P. Puhl-Quinn, and J. Sauvaud (2004), Multipoint analysis of the spatio-temporal coherence of dayside O+ outflows with Cluster, Ann. Geophys., 22(7), 2507, doi:10.5194/angeo-22-2507-2004.Dst
    15. Buresova, D., D. Altadill, M. Mosert, and G. Miro (2004), Predicted and measured bottomside F-region electron density and variability of the D1 parameter under quiet and disturbed conditions over Europe, Adv. Space Res., 34(9), 1973, doi:10.1016/j.asr.2004.04.007.Dst
    16. Burke, W., C. Huang, L. Gentile, and L. Bauer (2004), Seasonal-longitudinal variability of equatorial plasma bubbles, Ann. Geophys., 22(9), 3089, doi:10.5194/angeo-22-3089-2004.DstSYM-H
    17. Campbell, W. H. (2004), Failure of Dst index fields to represent a ring current, Space Weather, 2(8), S08002, doi:10.1029/2003sw000041.Dst
    18. Cargill, P., M. Dunlop, B. Lavraud, R. Elphic, D. Holland, K. Nykyri, A. Balogh, I. Dandouras, and H. Rème (2004), CLUSTER encounters with the high altitude cusp: boundary structure and magnetic field depletions, Ann. Geophys., 22(5), 1739, doi:10.5194/angeo-22-1739-2004.Dst
    19. Chen, H.-F. (2004), Analysis of the diurnal and semiannual variations of Dst index at different activity levels, J. Geophys. Res. Space Physics, 109(A3), A03212, doi:10.1029/2003ja009981.Dst
    20. Chua, D., G. Parks, M. Brittnacher, G. Germany, and J. Spann (2004), Auroral substorm timescales: IMF and seasonal variations, J. Geophys. Res. Space Physics, 109(A3), A03207, doi:10.1029/2003ja009951.AE
    21. Cid, C., M. A. Hidalgo, E. Saiz, Y. Cerrato, and J. Sequeiros (2004), Sources of intense geomagnetic storms over the rise of solar cycle 23, Sol. Phys., 223(1-2), 231, doi:10.1007/s11207-004-1243-3.Dst
    22. Cliver, E. W., and L. Svalgaard (2004), The 1859 Solar-Terrestrial Disturbance And the Current Limits of Extreme Space Weather Activity, Sol. Phys., 224(1-2), 407, doi:10.1007/s11207-005-4980-z.Dst
    23. Cliver, E., L. Svalgaard, and A. Ling (2004), Origins of the semiannual variation of geomagnetic activity in 1954 and 1996, Ann. Geophys., 22(1), 93, doi:10.5194/angeo-22-93-2004.Dst
    24. Currenti, G., C. Del Negro, L. Fortuna, R. Napoli, and A. Vicari (2004), Non-linear analysis of geomagnetic time series from Etna volcano, Nonlinear Processes Geophys., 11(1), 119, doi:10.5194/npg-11-119-2004.AE
    25. de Paula, E. R., K. N. Iyer, D. L. Hysell, F. S. Rodrigues, E. A. Kherani, A. C. Jardim, L. F. C. Rezende, S. G. Dutra, and N. B. Trivedi (2004), Multi-technique investigations of storm-time ionospheric irregularities over the São Luís equatorial station in Brazil, Ann. Geophys., 22(10), 3513, doi:10.5194/angeo-22-3513-2004.DstAE
    26. Denardini, C. M., M. A. Abdu, and J. H. A. Sobral (2004), VHF radar studies of the equatorial electrojet 3-m irregularities over São Luís: day-to-day variabilities under auroral activity and quiet conditions, J. Atmos. Sol.-Terr. Phys., 66(17), 1603, doi:10.1016/j.jastp.2004.07.031.DstAE
    27. Dewhurst, J., C. Owen, A. Fazakerley, and A. Balogh (2004), Thinning and expansion of the substorm plasma sheet: Cluster PEACE timing analysis, Ann. Geophys., 22(12), 4165, doi:10.5194/angeo-22-4165-2004.AE
    28. Dmitriev, A. V., A. V. Suvorova, J. K. Chao, and Y.-H. Yang (2004), Dawn-dusk asymmetry of geosynchronous magnetopause crossings, J. Geophys. Res. Space Physics, 109(A5), A05203, doi:10.1029/2003ja010171.SYM-H
    29. Dmitrieva, N., V. Sergeev, and M. Shukhtina (2004), Average characteristics of the midtail plasma sheet in different dynamic regimes of the magnetosphere, Ann. Geophys., 22(6), 2107, doi:10.5194/angeo-22-2107-2004.AE
    30. Ebihara, Y., and M.-C. Fok (2004), Postmidnight storm-time enhancement of tens-of-keV proton flux, J. Geophys. Res. Space Physics, 109(A12), A12209, doi:10.1029/2004ja010523.Dst
    31. Ebihara, Y., M. Ejiri, H. Nilsson, I. Sandahl, M. Grande, J. Fennell, J. Roeder, D. Weimer, and T. Fritz (2004), Multiple discrete-energy ion features in the inner magnetosphere: 9 February 1998, event, Ann. Geophys., 22(4), 1297, doi:10.5194/angeo-22-1297-2004.Dst
    32. Ebihara, Y., M. Ejiri, I. Sandahl, H. Nilsson, M. Grande, J. F. Fennell, J. L. Roeder, N. Y. Ganushkina, and A. Milillo (2004), Structure and dynamics of the proton energy density in the inner magnetosphere, Adv. Space Res., 33(5), 711, doi:10.1016/s0273-1177(03)00632-x.Dst
    33. Ebihara, Y., M.-C. Fok, R. A. Wolf, T. J. Immel, and T. E. Moore (2004), Influence of ionosphere conductivity on the ring current, J. Geophys. Res. Space Physics, 109(A8), A08205, doi:10.1029/2003ja010351.Dst
    34. Echer, E., and W. D. Gonzalez (2004), Geoeffectiveness of interplanetary shocks, magnetic clouds, sector boundary crossings and their combined occurrence, Geophys. Res. Lett., 31(9), L09808, doi:10.1029/2003gl019199.Dst
    35. Echer, E., M. V. Alves, and W. D. Gonzalez (2004), Geoeffectiveness of interplanetary shocks during solar minimum (1995 1996) and solar maximum (2000), Sol. Phys., 221(2), 361, doi:10.1023/b:sola.0000035045.65224.f3.DstAE
    36. Echer, E., W. D. Gonzalez, A. L. C. Gonzalez, A. Prestes, L. E. A. Vieira, A. dal Lago, F. L. Guarnieri, and N. J. Schuch (2004), Long-term correlation between solar and geomagnetic activity, J. Atmos. Sol.-Terr. Phys., 66(12), 1019, doi:10.1016/j.jastp.2004.03.011.DstAE
    37. Eroshenko, E., A. Belov, H. Mavromichalaki, G. Mariatos, V. Oleneva, C. Plainaki, and V. Yanke (2004), Cosmic-Ray Variations During the Two Greatest Bursts of Solar Activity in the 23rd Solar Cycle, Sol. Phys., 224(1-2), 345, doi:10.1007/s11207-005-5719-6.Dst
    38. Figueiredo, S., T. Karlsson, and G. Marklund (2004), Investigation of subauroral ion drifts and related field-aligned currents and ionospheric Pedersen conductivity distribution, Ann. Geophys., 22(3), 923, doi:10.5194/angeo-22-923-2004.AE
    39. Forbes, K. F., and O. C. St. Cyr (2004), Space weather and the electricity market: An initial assessment, Space Weather, 2(10), 10003, doi:10.1029/2003sw000005.Dst
    40. Francia, P., U. Villante, N. Adorante, and W. Gonzalez (2004), The storm-time ring current: a statistical analysis at two widely separated low-latitude stations, Ann. Geophys., 22(10), 3699, doi:10.5194/angeo-22-3699-2004.DstAE
    41. Frey, H. U., G. Haerendel, S. B. Mende, W. T. Forrester, T. J. Immel, and N. ØStgaard (2004), Subauroral morning proton spots (SAMPS) as a result of plasmapause-ring-current interaction, J. Geophys. Res. Space Physics, 109(A10), A10305, doi:10.1029/2004ja010516.Dst
    42. Ganushkina, N., T. Pulkkinen, M. Kubyshkina, H. Singer, and C. Russell (2004), Long-term evolution of magnetospheric current systems during storms, Ann. Geophys., 22(4), 1317, doi:10.5194/angeo-22-1317-2004.DstAE
    43. Garner, T. W., R. A. Wolf, R. W. Spiro, W. J. Burke, B. G. Fejer, S. Sazykin, J. L. Roeder, and M. R. Hairston (2004), Magnetospheric electric fields and plasma sheet injection to low L-shells during the 4-5 June 1991 magnetic storm: Comparison between the Rice Convection Model and observations, J. Geophys. Res. Space Physics, 109(A2), A02214, doi:10.1029/2003ja010208.Dst
    44. Gholipour, A., C. Lucas, and B. N. Araabi (2004), Black box modeling of magnetospheric dynamics to forecast geomagnetic activity, Space Weather, 2(7), S07001, doi:10.1029/2003sw000039.DstAE
    45. Gjerloev, J., R. Hoffman, M. Friel, L. Frank, and J. Sigwarth (2004), Substorm behavior of the auroral electrojet indices, Ann. Geophys., 22(6), 2135, doi:10.5194/angeo-22-2135-2004.DstAE
    46. Gonzalez, W. D. (2004), Space weather research in Brazil, Adv. Space Res., 34(10), 2186, doi:10.1016/j.asr.2003.06.030.Dst
    47. Gonzalez, W. D., A. dal Lago, A. L. Clúa de Gonzalez, L. E. A. Vieira, and B. T. Tsurutani (2004), Prediction of peak-Dst from halo CME/magnetic cloud-speed observations, J. Atmos. Sol.-Terr. Phys., 66(2), 161, doi:10.1016/j.jastp.2003.09.006.Dst
    48. Green, J. C., T. G. Onsager, T. P. O'Brien, and D. N. Baker (2004), Testing loss mechanisms capable of rapidly depleting relativistic electron flux in the Earth's outer radiation belt, J. Geophys. Res. Space Physics, 109(A12), A12211, doi:10.1029/2004ja010579.DstAE
    49. Green, J. L., S. Boardsen, L. Garcia, S. F. Fung, and B. W. Reinisch (2004), Seasonal and solar cycle dynamics of the auroral kilometric radiation source region, J. Geophys. Res. Space Physics, 109(A5), A05223, doi:10.1029/2003ja010311.AE
    50. Gulyaeva, T. L. (2004), Incorporation of topside half peak density anchor point in IRI, Adv. Space Res., 34(9), 1993, doi:10.1016/j.asr.2004.07.011.Dst
    51. Haraguchi, K., H. Kawano, K. Yumoto, S. Ohtani, T. Higuchi, and G. Ueno (2004), Ionospheric conductivity dependence of dayside region-0, 1, and 2 field-aligned current systems: statistical study with DMSP-F7, Ann. Geophys., 22(8), 2775, doi:10.5194/angeo-22-2775-2004.AE
    52. Henderson, M. G. (2004), The May 2-3, 1986 CDAW-9C interval: A sawtooth event, Geophys. Res. Lett., 31(11), L11804, doi:10.1029/2004gl019941.AE
    53. Hsu, T.-S., and R. L. McPherron (2004), Average characteristics of triggered and nontriggered substorms, J. Geophys. Res. Space Physics, 109(A7), A07208, doi:10.1029/2003ja009933.AE
    54. Huang, C. Y., and W. J. Burke (2004), Transient sheets of field-aligned current observed by DMSP during the main phase of a magnetic superstorm, J. Geophys. Res. Space Physics, 109(A6), A06303, doi:10.1029/2003ja010067.AESYM-H
    55. Huang, C.-S., J. C. Foster, L. P. Goncharenko, G. D. Reeves, J. L. Chau, K. Yumoto, and K. Kitamura (2004), Variations of low-latitude geomagnetic fields and Dst index caused by magnetospheric substorms, J. Geophys. Res. Space Physics, 109(A5), A05219, doi:10.1029/2003ja010334.DstAESYM-HSYM-DASY-H
    56. Huttunen, K., and H. Koskinen (2004), Importance of post-shock streams and sheath region as drivers of intense magnetospheric storms and high-latitude activity, Ann. Geophys., 22(5), 1729, doi:10.5194/angeo-22-1729-2004.DstAESYM-HASY-H
    57. Hwang, J., K. W. Min, E. Lee, C. Lee, and D. Y. Lee (2004), A case study to determine the relationship of relativistic electron events to substorm injections and ULF power, Geophys. Res. Lett., 31(23), L23801, doi:10.1029/2004gl021544.Dst
    58. Imhof, W. L., S. M. Petrinec, R. R. Anderson, M. Walt, J. Mobilia, and H. Matsumoto (2004), Correlations between low-frequency and high-frequency auroral kilometric radiation plasma wave intensity bursts and X rays in the auroral zone, J. Geophys. Res. Space Physics, 109(A9), A09204, doi:10.1029/2003ja010357.AE
    59. Immel, T., H. Frey, S. Mende, and E. Sagawa (2004), Global observations of the zonal drift speed of equatorial ionospheric plasma bubbles, Ann. Geophys., 22(9), 3099, doi:10.5194/angeo-22-3099-2004.DstAE
    60. Johansson, T., S. Figueiredo, T. Karlsson, G. Marklund, A. Fazakerley, S. Buchert, P. Lindqvist, and H. Nilsson (2004), Intense high-altitude auroral electric fields - temporal and spatial characteristics, Ann. Geophys., 22(7), 2485, doi:10.5194/angeo-22-2485-2004.AE
    61. Jorgensen, A. M., H. E. Spence, W. J. Hughes, and H. J. Singer (2004), A statistical study of the global structure of the ring current, J. Geophys. Res. Space Physics, 109(A12), A12204, doi:10.1029/2003ja010090.Dst
    62. Karlsson, T., G. Marklund, S. Figueiredo, T. Johansson, and S. Buchert (2004), Separating spatial and temporal variations in auroral electric and magnetic fields by Cluster multipoint measurements, Ann. Geophys., 22(7), 2463, doi:10.5194/angeo-22-2463-2004.AE
    63. Keika, K., M. Nosé, S. P. Christon, and R. W. McEntire (2004), Acceleration sites of energetic ions upstream of the Earth's bow shock and in the magnetosheath: Statistical study on charge states of heavy ions, J. Geophys. Res. Space Physics, 109(A11), A11104, doi:10.1029/2003ja009953.DstSYM-H
    64. Kellogg, P. J., and S. D. Bale (2004), Nearly monochromatic waves in the distant tail of the Earth, J. Geophys. Res. Space Physics, 109(A4), A04223, doi:10.1029/2003ja010131.AE
    65. Kepko, L., M. G. Kivelson, R. L. McPherron, and H. E. Spence (2004), Relative timing of substorm onset phenomena, J. Geophys. Res. Space Physics, 109(A4), A04203, doi:10.1029/2003ja010285.AE
    66. Khazanov, G. V., E. N. Krivorutsky, K. V. Gamayunov, and L. A. Avanov (2004), The nonlinear coupling of electromagnetic ion cyclotron and lower hybrid waves in the ring current region: the magnetic storm 1-7May 1998, Nonlinear Processes Geophys., 11(2), 229, doi:10.5194/npg-11-229-2004.AE
    67. Khazanov, G. V., M. W. Liemohn, M.-C. Fok, T. S. Newman, and A. J. Ridley (2004), Stormtime particle energization with high temporal resolution AMIE potentials, J. Geophys. Res. Space Physics, 109(A5), A05209, doi:10.1029/2003ja010186.Dst
    68. Khazanov, G., M. Liemohn, T. Newman, M. Fok, and A. Ridley (2004), Magnetospheric convection electric field dynamics andstormtime particle energization: case study of the magneticstorm of 4 May 1998, Ann. Geophys., 22(2), 497, doi:10.5194/angeo-22-497-2004.Dst
    69. Kim, K.-H., C. A. Cattell, D.-H. Lee, A. Balogh, E. Lucek, M. Andre, Y. Khotyaintsev, and H. RèMe (2004), Cluster observations in the magnetotail during sudden and quasiperiodic solar wind variations, J. Geophys. Res. Space Physics, 109(A4), A04219, doi:10.1029/2003ja010328.SYM-H
    70. Knipp, D. J., W. K. Tobiska, and B. A. Emery (2004), Direct and Indirect Thermospheric Heating Sources for Solar Cycles 21-23, Sol. Phys., 224(1-2), 495, doi:10.1007/s11207-005-6393-4.Dst
    71. Kress, B. T., M. K. Hudson, K. L. Perry, and P. L. Slocum (2004), Dynamic modeling of geomagnetic cutoff for the 23-24 November 2001 solar energetic particle event, Geophys. Res. Lett., 31(4), L04808, doi:10.1029/2003gl018599.Dst
    72. Kudela, K., and R. Brenkus (2004), Cosmic ray decreases and geomagnetic activity: list of events 1982-2002, J. Atmos. Sol.-Terr. Phys., 66(13-14), 1121, doi:10.1016/j.jastp.2004.05.007.Dst
    73. LathuillèRe, C., and M. Menvielle (2004), WINDII thermosphere temperature perturbation for magnetically active situations, J. Geophys. Res. Space Physics, 109(A11), A11304, doi:10.1029/2004ja010526.Dst
    74. Laurenza, M., M. Storini, G. Moreno, and Z. Fujii (2004), Reliability of the interplanetary magnetic field polarities inferred from north-south cosmic ray anisotropy and geomagnetic data, J. Geophys. Res. Space Physics, 109(A6), A06103, doi:10.1029/2003ja010323.Dst
    75. Lavraud, B., A. Fedorov, E. Budnik, A. Grigoriev, P. Cargill, M. Dunlop, H. Rème, I. Dandouras, and A. Balogh (2004), Cluster survey of the high-altitude cusp properties: a three-year statistical study, Ann. Geophys., 22(8), 3009, doi:10.5194/angeo-22-3009-2004.Dst
    76. Le, G., C. Russell, and K. Takahashi (2004), Morphology of the ring current derived from magnetic field observations, Ann. Geophys., 22(4), 1267, doi:10.5194/angeo-22-1267-2004.Dst
    77. Lee, C.-C., J.-Y. Liu, M.-Q. Chen, S.-Y. Su, H.-C. Yeh, and K. Nozaki (2004), Observation and model comparisons of the traveling atmospheric disturbances over the Western Pacific region during the 6-7 April 2000 magnetic storm, J. Geophys. Res. Space Physics, 109(A9), A09309, doi:10.1029/2003ja010267.DstAE
    78. Lee, D.-Y., J. A. Hwang, E. S. Lee, K. W. Min, W. Y. Han, and U. W. Nam (2004), How are storm time injections different from nonstorm time injections?, J. Atmos. Sol.-Terr. Phys., 66(18), 1715, doi:10.1016/j.jastp.2004.07.034.Dst
    79. Lei, J., L. Liu, W. Wan, and S.-R. Zhang (2004), Modeling the behavior of ionosphere above Millstone Hill during the September 21-27, 1998 storm, J. Atmos. Sol.-Terr. Phys., 66(12), 1093, doi:10.1016/j.jastp.2004.04.004.AE
    80. Lepreti, F., V. Carbone, P. Giuliani, L. Sorriso-Valvo, and P. Veltri (2004), Statistical properties of dissipation bursts within turbulence: Solar flares and geomagnetic activity, Planet. Space Sci., 52(10), 957, doi:10.1016/j.pss.2004.03.001.AE
    81. Li, Y., and J. Luhmann (2004), Solar cycle control of the magnetic cloud polarity and the geoeffectiveness, J. Atmos. Sol.-Terr. Phys., 66(3-4), 323, doi:10.1016/j.jastp.2003.12.001.Dst
    82. Liang, J., G. J. Sofko, E. F. Donovan, M. Watanabe, and R. A. Greenwald (2004), Convection dynamics and driving mechanism of a small substorm during dominantly IMF By+, Bz+ conditions, Geophys. Res. Lett., 31(8), L08803, doi:10.1029/2003gl018878.AE
    83. Liemohn, M. W., A. J. Ridley, D. L. Gallagher, D. M. Ober, and J. U. Kozyra (2004), Dependence of plasmaspheric morphology on the electric field description during the recovery phase of the 17 April 2002 magnetic storm, J. Geophys. Res. Space Physics, 109(A3), A03209, doi:10.1029/2003ja010304.Dst
    84. Lima, W., F. Becker-Guedes, Y. Sahai, P. Fagundes, J. Abalde, G. Crowley, and J. Bittencourt (2004), Response of the equatorial and low-latitude ionosphere during the space weather events of April 2002, Ann. Geophys., 22(9), 3211, doi:10.5194/angeo-22-3211-2004.DstAE
    85. Liou, K., P. T. Newell, C.-I. Meng, C.-C. Wu, and R. P. Lepping (2004), On the relationship between shock-induced polar magnetic bays and solar wind parameters, J. Geophys. Res. Space Physics, 109(A6), A06306, doi:10.1029/2004ja010400.AE
    86. Liu, H., and G. Lu (2004), Velocity shear-related ion upflow in the low-altitude ionosphere, Ann. Geophys., 22(4), 1149, doi:10.5194/angeo-22-1149-2004.Dst
    87. Luhmann, J. G., S. C. Solomon, J. A. Linker, J. G. Lyon, Z. Mikic, D. Odstrcil, W. Wang, and M. Wiltberger (2004), Coupled model simulation of a Sun-to-Earth space weather event, J. Atmos. Sol.-Terr. Phys., 66(15-16), 1243, doi:10.1016/j.jastp.2004.04.005.AE
    88. Lui, A. T. Y. (2004), Testing the hypothesis of the Earth's magnetosphere behaving like an avalanching system, Nonlinear Processes Geophys., 11, 701, doi:10.5194/npg-11-701-2004.AE
    89. Lui, A. T. Y., T. Hori, S. Ohtani, Y. Zhang, X. Y. Zhou, M. G. Henderson, T. Mukai, H. Hayakawa, and S. B. Mende (2004), Magnetotail behavior during storm time ``sawtooth injections'', J. Geophys. Res. Space Physics, 109(A10), A10215, doi:10.1029/2004ja010543.Dst
    90. Lynn, K., M. Sjarifudin, T. Harris, and M. Le Huy (2004), Combined TOPEX/Poseidon TEC and ionosonde observations of negative low-latitude ionospheric storms, Ann. Geophys., 22(8), 2837, doi:10.5194/angeo-22-2837-2004.Dst
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    185. Walt, M., and H. D. Voss (2004), Proton precipitation during magnetic storms in August through November 1998, J. Geophys. Res. Space Physics, 109(A2), A02201, doi:10.1029/2003ja010083.Dst
    186. Wang, C.-P., L. R. Lyons, M. W. Chen, and F. R. Toffoletto (2004), Modeling the transition of the inner plasma sheet from weak to enhanced convection, J. Geophys. Res. Space Physics, 109(A12), A12202, doi:10.1029/2004ja010591.Dst
    187. Watari, S., M. Vandas, and T. Watanabe (2004), Formation of a strong southward IMF near the solar maximum of cycle23, Ann. Geophys., 22(2), 673, doi:10.5194/angeo-22-673-2004.Dst
    188. Waters, C., B. Anderson, R. Greenwald, R. Barnes, and J. Ruohoniemi (2004), High-latitude poynting flux from combined Iridium and SuperDARN data, Ann. Geophys., 22(8), 2861, doi:10.5194/angeo-22-2861-2004.AE
    189. Wei, H. L., S. A. Billings, and M. Balikhin (2004), Analysis of the geomagnetic activity of the Dst index and self-affine fractals using wavelet transforms, Nonlinear Processes Geophys., 11(3), 303, doi:10.5194/npg-11-303-2004.DstAE
    190. Wei, H. L., S. A. Billings, and M. Balikhin (2004), Prediction of the Dst index using multiresolution wavelet models, J. Geophys. Res. Space Physics, 109(A7), A07212, doi:10.1029/2003ja010332.Dst
    191. Wiltberger, M., W. Wang, A. G. Burns, S. C. Solomon, J. G. Lyon, and C. C. Goodrich (2004), Initial results from the coupled magnetosphere ionosphere thermosphere model: magnetospheric and ionospheric responses, J. Atmos. Sol.-Terr. Phys., 66(15-16), 1411, doi:10.1016/j.jastp.2004.03.026.AE
    192. Wu, C.-C., C. D. Fry, J.-Y. Liu, K. Liou, and C.-L. Tseng (2004), Annual TEC variation in the equatorial anomaly region during the solar minimum: September 1996-August 1997, J. Atmos. Sol.-Terr. Phys., 66(3-4), 199, doi:10.1016/j.jastp.2003.09.017.Dst
    193. Wu, C.-C., K. Liou, R. P. Lepping, and C.-I. Meng (2004), Identification of substorms within storms, J. Atmos. Sol.-Terr. Phys., 66(2), 125, doi:10.1016/j.jastp.2003.09.012.AE
    194. Yamaguchi, R., H. Kawano, S. Ohtani, S. Kokubun, and K. Yumoto (2004), Total pressure variations in the magnetotail as a function of the position and the substorm magnitude, J. Geophys. Res. Space Physics, 109(A3), A03206, doi:10.1029/2003ja010196.AE
    195. Yizengaw, E., E. Essex, and R. Birsa (2004), The Southern Hemisphere and equatorial region ionization response for a 22 September 1999 severe magnetic storm, Ann. Geophys., 22(8), 2765, doi:10.5194/angeo-22-2765-2004.DstAE
    196. Yurchyshyn, V., H. Wang, and V. Abramenko (2004), Correlation between speeds of coronal mass ejections and the intensity of geomagnetic storms, Space Weather, 2(2), S02001, doi:10.1029/2003sw000020.Dst
    197. Zaharia, S., C. Cheng, and K. Maezawa (2004), 3-D force-balanced magnetospheric configurations, Ann. Geophys., 22(1), 251, doi:10.5194/angeo-22-251-2004.Dst
    198. Zhang, B.-C., Y. Kamide, R.-Y. Liu, H. Shinagawa, and K. Iwamasa (2004), A modeling study of ionospheric conductivities in the high-latitude electrojet regions, J. Geophys. Res. Space Physics, 109(A4), A04310, doi:10.1029/2003ja010181.AE
    199. Zhang, J., M. W. Liemohn, J. U. Kozyra, B. J. Lynch, and T. H. Zurbuchen (2004), A statistical study of the geoeffectiveness of magnetic clouds during high solar activity years, J. Geophys. Res. Space Physics, 109(A9), A09101, doi:10.1029/2004ja010410.Dst
    200. Zhang, Y., L. J. Paxton, C.-I. Meng, D. Morrison, B. Wolven, H. Kil, and A. B. Christensen (2004), Double dayside detached auroras: TIMED/GUVI observations, Geophys. Res. Lett., 31(10), L10801, doi:10.1029/2003gl018949.AE
    201. Zhang, Y., L. J. Paxton, D. Morrison, B. Wolven, H. Kil, C.-I. Meng, S. B. Mende, and T. J. Immel (2004), O/N2 changes during 1-4 October 2002 storms: IMAGE SI-13 and TIMED/GUVI observations, J. Geophys. Res. Space Physics, 109(A10), A10308, doi:10.1029/2004ja010441.Dst
    202. Zhou, X.-Y., and B. T. Tsurutani (2004), Dawn and dusk auroras caused by gradual, intense solar wind ram pressure events, J. Atmos. Sol.-Terr. Phys., 66(2), 153, doi:10.1016/j.jastp.2003.09.008.AE
    203. Zolesi, B., A. Belehaki, I. Tsagouri, and L. R. Cander (2004), Real-time updating of the Simplified Ionospheric Regional Model for operational applications, Radio Sci., 39(2), RS2011, doi:10.1029/2003rs002936.DstAE
    204. Øieroset, M., T. D. Phan, M. Fujimoto, and R. P. Lin (2004), Distant magnetotail reconnection and the coupling to the near-Earth plasma sheet: Wind and Geotail case study, Geophys. Res. Lett., 31(18), L18805, doi:10.1029/2004gl020321.AE
    205. Østgaard, N., S. B. Mende, H. U. Frey, T. J. Immel, L. A. Frank, J. B. Sigwarth, and T. J. Stubbs (2004), Interplanetary magnetic field control of the location of substorm onset and auroral features in the conjugate hemispheres, J. Geophys. Res. Space Physics, 109(A7), A07204, doi:10.1029/2003ja010370.AE

    2003 179 papers↑ top

    1. Abdu, M. A., C. M. Dinardini, J. H. A. Sobral, I. S. Batista, P. Muralikrishna, K. N. Iyer, O. Veliz, and E. R. de Paula (2003), Equatorial electrojet 3-M irregularity dynamics during magnetic disturbances over Brazil: results from the new VHF radar at Sa~o Luís, J. Atmos. Sol.-Terr. Phys., 65(14-15), 1293, doi:10.1016/j.jastp.2003.08.011.AE
    2. Abdu, M. A., I. S. Batista, H. Takahashi, J. MacDougall, J. H. Sobral, A. F. Medeiros, and N. B. Trivedi (2003), Magnetospheric disturbance induced equatorial plasma bubble development and dynamics: A case study in Brazilian sector, J. Geophys. Res. Space Physics, 108(A12), 1449, doi:10.1029/2002ja009721.DstAE
    3. Abdu, M. A., J. W. MacDougall, I. S. Batista, J. H. A. Sobral, and P. T. Jayachandran (2003), Equatorial evening prereversal electric field enhancement and sporadic E layer disruption: A manifestation of E and F region coupling, J. Geophys. Res. Space Physics, 108(A6), 1254, doi:10.1029/2002ja009285.AE
    4. Alexeev, I. I. (2003), Energy flux in the Earth's magnetosphere: Storm substorm relationship, Space Sci. Rev., 107(1), 141, doi:10.1023/a:1025519622160.Dst
    5. Alexeev, I. I., E. S. Belenkaya, S. Y. Bobrovnikov, and V. V. Kalegaev (2003), Modelling of the electromagnetic field in the interplanetary space and in the Earth's magnetosphere, Space Sci. Rev., 107(1), 7, doi:10.1023/a:1025542915800.DstAE
    6. Altadill, D., E. M. Apostolov, C. Jacobi, and N. J. Mitchell (2003), Six-day westward propagating wave in the maximum electron density of the ionosphere, Ann. Geophys., 21(7), 1577, doi:10.5194/angeo-21-1577-2003.Dst
    7. Antonova, E. E., E. Y. Budnik, I. P. Kirpichev, V. N. Lutsenko, and N. F. Pissarenko (2003), Magnetospheric plasma pressure and space weather, Adv. Space Res., 31(4), 1093, doi:10.1016/s0273-1177(02)00806-2.DstAE
    8. Araujo-Pradere, E. A., T. J. Fuller-Rowell, and D. Bilitza (2003), Validation of the STORM response in IRI2000, J. Geophys. Res. Space Physics, 108(A3), 1120, doi:10.1029/2002ja009720.DstAE
    9. Arikan, F., C. B. Erol, and O. Arikan (2003), Regularized estimation of vertical total electron content from Global Positioning System data, J. Geophys. Res. Space Physics, 108(A12), 1469, doi:10.1029/2002ja009605.Dst
    10. Athanasiu, M. A., G. P. Pavlos, D. V. Sarafopoulos, and E. T. Sarris (2003), Dynamical characteristics of magnetospheric energetic ion time series: evidence for low dimensional chaos, Ann. Geophys., 21(9), 1995, doi:10.5194/angeo-21-1995-2003.AE
    11. Baker, J. B., A. J. Ridley, V. O. Papitashvili, and C. R. Clauer (2003), The dependence of winter aurora on interplanetary parameters, J. Geophys. Res. Space Physics, 108(A4), 8009, doi:10.1029/2002ja009352.AE
    12. Ballatore, P. (2003), Pc5 micropulsation power at conjugate high-latitude locations, J. Geophys. Res. Space Physics, 108(A4), 1146, doi:10.1029/2002ja009600.AE
    13. Ballatore, P. (2003), Reply to Comment on ``Effects of fast and slow solar wind on the correlations between interplanetary medium and geomagnetic activity'' by C. B. Wang and J. K. Chao, J. Geophys. Res. Space Physics, 108(A10), 1387, doi:10.1029/2003ja009840.Dst
    14. Baranyi, T., and A. LudmáNy (2003), Effects of solar polarity reversals on geoeffective plasma streams, J. Geophys. Res. Space Physics, 108(A5), 1212, doi:10.1029/2002ja009553.Dst
    15. Belehaki, A., N. Jakowski, and B. W. Reinisch (2003), Comparison of ionospheric ionization measurements over Athens using ground ionosonde and GPS-derived TEC values, Radio Sci., 38(6), 1105, doi:10.1029/2003rs002868.Dst
    16. Bellanger, E., V. G. Kossobokov, and J.-L. Le Mouël (2003), Predictability of geomagnetic series, Ann. Geophys., 21(5), 1101, doi:10.5194/angeo-21-1101-2003.Dst
    17. Berube, D., M. B. Moldwin, and J. M. Weygand (2003), An automated method for the detection of field line resonance frequencies using ground magnetometer techniques, J. Geophys. Res. Space Physics, 108(A9), 1348, doi:10.1029/2002ja009737.Dst
    18. Blagoveshchensky, D. V., O. A. Maltseva, and A. S. Rodger (2003), Ionosphere dynamics over Europe and western Asia during magnetospheric substorms 1998-99, Ann. Geophys., 21(5), 1141, doi:10.5194/angeo-21-1141-2003.AE
    19. Borovsky, J. E., and H. O. Funsten (2003), MHD turbulence in the Earth's plasma sheet: Dynamics, dissipation, and driving, J. Geophys. Res. Space Physics, 108(A7), 1284, doi:10.1029/2002ja009625.AE
    20. Borovsky, J. E., and H. O. Funsten (2003), Role of solar wind turbulence in the coupling of the solar wind to the Earth's magnetosphere, J. Geophys. Res. Space Physics, 108(A6), 1246, doi:10.1029/2002ja009601.DstAE
    21. Brunini, C., M. A. van Zele, A. Meza, and M. Gende (2003), Quiet and perturbed ionospheric representation according to the electron content from GPS signals, J. Geophys. Res. Space Physics, 108(A2), 1056, doi:10.1029/2002ja009346.DstAE
    22. Burke, W. J., C. Y. Huang, C. E. Valladares, J. S. Machuzak, L. C. Gentile, and P. J. Sultan (2003), Multipoint observations of equatorial plasma bubbles, J. Geophys. Res. Space Physics, 108(A5), 1221, doi:10.1029/2002ja009382.Dst
    23. Burlaga, L., D. Berdichevsky, N. Gopalswamy, R. Lepping, and T. Zurbuchen (2003), Merged interaction regions at 1 AU, J. Geophys. Res. Space Physics, 108(A12), 1425, doi:10.1029/2003ja010088.Dst
    24. Cane, H. V., and I. G. Richardson (2003), Interplanetary coronal mass ejections in the near-Earth solar wind during 1996-2002, J. Geophys. Res. Space Physics, 108(A4), 1156, doi:10.1029/2002ja009817.Dst
    25. Chang, T., S. W. Y. Tam, C.-C. Wu, and G. Consolini (2003), Complexity, Forced and/or Self-Organized Criticality, and Topological Phase Transitions in Space Plasmas, Space Sci. Rev., 107(1), 425, doi:10.1023/a:1025502023494.AE
    26. Chen, M. W., M. Schulz, G. Lu, and L. R. Lyons (2003), Quasi-steady drift paths in a model magnetosphere with AMIE electric field: Implications for ring current formation, J. Geophys. Res. Space Physics, 108(A5), 1180, doi:10.1029/2002ja009584.Dst
    27. Cully, C. M., E. F. Donovan, A. W. Yau, and G. G. Arkos (2003), Akebono/Suprathermal Mass Spectrometer observations of low-energy ion outflow: Dependence on magnetic activity and solar wind conditions, J. Geophys. Res. Space Physics, 108(A2), 1093, doi:10.1029/2001ja009200.Dst
    28. Daglis, I. A., J. U. Kozyra, Y. Kamide, D. Vassiliadis, A. S. Sharma, M. W. Liemohn, W. D. Gonzalez, B. T. Tsurutani, and G. Lu (2003), Intense space storms: Critical issues and open disputes, J. Geophys. Res. Space Physics, 108(A5), 1208, doi:10.1029/2002ja009722.DstAE
    29. Danilov, A. D., N. V. Smirnova, T. A. Blix, E. V. Thrane, and L. B. Vanina (2003), Some features of electron density behaviour in the high latitude D-region derived from in situ measurements, J. Atmos. Sol.-Terr. Phys., 65(4), 417, doi:10.1016/s1364-6826(02)00198-0.AE
    30. Darrouzet, F., W. N. Spjeldvik, J. F. Lemaire, G. Gustafsson, C. Hann, and C. Dyck (2003), Towards statistical and empirical models of the distribution of VLF waves at high latitude from the observations of the viking spacecraft, Adv. Space Res., 32(3), 323, doi:10.1016/s0273-1177(03)90270-5.AE
    31. Dmitriev, A. V., and J. K. Chao (2003), Dependence of geosynchronous relativistic electron enhancements on geomagnetic parameters, J. Geophys. Res. Space Physics, 108(A11), 1388, doi:10.1029/2002ja009664.DstAE
    32. Ebihara, Y., M. Ejiri, and H. Nilsson (2003), Single particle simulation on the storm-time ring current formation and DST variation, Adv. Space Res., 31(4), 1051, doi:10.1016/s0273-1177(02)00784-6.Dst
    33. Eriksson, S., W. J. Peria, J. W. Bonnell, Y.-J. Su, R. E. Ergun, Y.-K. Tung, G. K. Parks, and C. W. Carlson (2003), Lobe cell convection and polar cap precipitation, J. Geophys. Res. Space Physics, 108(A5), 1198, doi:10.1029/2002ja009725.AE
    34. Farrugia, C. J., et al. (2003), Large-scale geomagnetic effects of May 4, 1998, Adv. Space Res., 31(4), 1111, doi:10.1016/s0273-1177(02)00890-6.Dst
    35. Fejer, B. G., and J. T. Emmert (2003), Low-latitude ionospheric disturbance electric field effects during the recovery phase of the 19-21 October 1998 magnetic storm, J. Geophys. Res. Space Physics, 108(A12), 1454, doi:10.1029/2003ja010190.DstAE
    36. Feldstein, Y. I., L. A. Dremukhina, A. E. Levitin, U. Mall, I. I. Alexeev, and V. V. Kalegaev (2003), Energetics of the magnetosphere during the magnetic storm, J. Atmos. Sol.-Terr. Phys., 65(4), 429, doi:10.1016/s1364-6826(02)00339-5.DstAE
    37. Fernandez, J. H., L. Rizzo Piazza, and P. Kaufmann (2003), Trimpi occurrence and geomagnetic activity: Analysis of events detected at Comandante Ferraz Brazilian Antarctic Station (L = 2.25), J. Geophys. Res. Space Physics, 108(A1), 1041, doi:10.1029/2001ja009213.Dst
    38. Frahm, R. A., M. Wüest, J. D. Winningham, J. R. Sharber, J. K. Jennings, G. Crowley, R. Link, and A. Hudson (2003), Comparison of common climatology data, Adv. Space Res., 32(11), 2229, doi:10.1016/s0273-1177(03)90547-3.Dst
    39. Frank, L. A., and J. B. Sigwarth (2003), Simultaneous images of the northern and southern auroras from the Polar spacecraft: An auroral substorm, J. Geophys. Res. Space Physics, 108(A4), 8015, doi:10.1029/2002ja009356.Dst
    40. Freeman, M. P. (2003), A unified model of the response of ionospheric convection to changes in the interplanetary magnetic field, J. Geophys. Res. Space Physics, 108(A1), 1024, doi:10.1029/2002ja009385.AE
    41. Fukao, S., Y. Ozawa, M. Yamamoto, and R. T. Tsunoda (2003), Altitude-extended equatorial spread F observed near sunrise terminator over Indonesia, Geophys. Res. Lett., 30(22), 2137, doi:10.1029/2003gl018383.Dst
    42. Ganushkina, N. Y., T. Karhunen, M. V. Kubyshkina, Y. Ebihara, V. A. Sergeev, T. I. Pulkkinen, and T. A. Fritz (2003), Locations of proton isotropic boundaries as measured by conjugate high-altitude and low-altitude satellites, Adv. Space Res., 31(5), 1265, doi:10.1016/s0273-1177(03)00005-x.Dst
    43. Garcia-Fernandez, M., M. Hernandez-Pajares, M. Juan, and J. Sanz (2003), Improvement of ionospheric electron density estimation with GPSMET occultations using Abel inversion and VTEC information, J. Geophys. Res. Space Physics, 108(A9), 1338, doi:10.1029/2003ja009952.Dst
    44. Garner, T. W., R. A. Wolf, R. W. Spiro, M. F. Thomsen, and H. Korth (2003), Pressure balance inconsistency exhibited in a statistical model of magnetospheric plasma, J. Geophys. Res. Space Physics, 108(A8), 1331, doi:10.1029/2003ja009877.DstAE
    45. Gjerloev, J. W., R. A. Hoffman, E. Tanskanen, M. Friel, L. A. Frank, and J. B. Sigwarth (2003), Auroral electrojet configuration during substorm growth phase, Geophys. Res. Lett., 30(18), 1927, doi:10.1029/2003gl017851.AE
    46. Goldstein, J., B. R. Sandel, W. T. Forrester, and P. H. Reiff (2003), IMF-driven plasmasphere erosion of 10 July 2000, Geophys. Res. Lett., 30(3), 1146, doi:10.1029/2002gl016478.AE
    47. Goldstein, J., R. W. Spiro, B. R. Sandel, R. A. Wolf, S.-Y. Su, and P. H. Reiff (2003), Overshielding event of 28-29 July 2000, Geophys. Res. Lett., 30(8), 1421, doi:10.1029/2002gl016644.Dst
    48. Gulyaeva, T. L., G. de Franceschi, and L. Perrone (2003), Electron temperature variations at the F2 layer peak height during the space weather month of September 1999, Adv. Space Res., 31(4), 965, doi:10.1016/s0273-1177(02)00794-9.DstAE
    49. Hidalgo, M. A. (2003), An Approach to the Relationship Between Magnetic Clouds and the Recovery Phase of Geomagnetic Storms, Sol. Phys., 216(1), 311, doi:10.1023/a:1026159717348.Dst
    50. Hnat, B., S. C. Chapman, G. Rowlands, N. W. Watkins, and M. P. Freeman (2003), Scaling in long term data sets of geomagnetic indices and solar wind ∊ as seen by WIND spacecraft, Geophys. Res. Lett., 30(22), 2174, doi:10.1029/2003gl018209.AE
    51. Hnat, B., S. C. Chapman, N. Watkins, and M. P. Freeman (2003), Correction to ``Scaling of solar wind ∊ and the AU, AL and AE indices as seen by WIND'' by B. Hnat, S. C. Chapman, G. Rowlands, N. W. Watkins, and M. P. Freeman, Geophys. Res. Lett., 30(8), 1426, doi:10.1029/2003gl017194.AE
    52. Horne, R. B., N. P. Meredith, R. M. Thorne, D. Heynderickx, R. H. A. Iles, and R. R. Anderson (2003), Evolution of energetic electron pitch angle distributions during storm time electron acceleration to megaelectronvolt energies, J. Geophys. Res. Space Physics, 108(A1), 1016, doi:10.1029/2001ja009165.DstAE
    53. Horne, R. B., R. M. Thorne, N. P. Meredith, and R. R. Anderson (2003), Diffuse auroral electron scattering by electron cyclotron harmonic and whistler mode waves during an isolated substorm, J. Geophys. Res. Space Physics, 108(A7), 1290, doi:10.1029/2002ja009736.AE
    54. Horton, W., R. S. Weigel, D. Vassiliadis, and I. Doxas (2003), Substorm classification with the WINDMI model, Nonlinear Processes Geophys., 10, 363, doi:10.5194/npg-10-363-2003.AE
    55. Horvath, I., and E. A. Essex (2003), The southern-hemisphere mid-latitude day-time and night-time trough at low-sunspot numbers, J. Atmos. Sol.-Terr. Phys., 65(8), 917, doi:10.1016/s1364-6826(03)00113-5.Dst
    56. Hsu, T.-S., and R. L. McPherron (2003), Occurrence frequencies of IMF triggered and nontriggered substorms, J. Geophys. Res. Space Physics, 108(A7), 1307, doi:10.1029/2002ja009442.AE
    57. Huang, C.-S., G. D. Reeves, J. E. Borovsky, R. M. Skoug, Z. Y. Pu, and G. Le (2003), Periodic magnetospheric substorms and their relationship with solar wind variations, J. Geophys. Res. Space Physics, 108(A6), 1255, doi:10.1029/2002ja009704.DstAE
    58. Huang, C.-S., J. C. Foster, G. D. Reeves, G. Le, H. U. Frey, C. J. Pollock, and J.-M. Jahn (2003), Periodic magnetospheric substorms: Multiple space-based and ground-based instrumental observations, J. Geophys. Res. Space Physics, 108(A11), 1411, doi:10.1029/2003ja009992.DstAESYM-HSYM-DASY-H
    59. Huang, C.-S., J. C. Foster, L. P. Goncharenko, G. J. Sofko, J. E. Borovsky, and F. J. Rich (2003), Midlatitude ionospheric disturbances during magnetic storms and substorms, J. Geophys. Res. Space Physics, 108(A6), 1244, doi:10.1029/2002ja009608.Dst
    60. HäKkinen, L. V. T., T. I. Pulkkinen, R. J. Pirjola, H. Nevanlinna, E. I. Tanskanen, and N. E. Turner (2003), Seasonal and diurnal variation of geomagnetic activity: Revised Dst versus external drivers, J. Geophys. Res. Space Physics, 108(A2), 1060, doi:10.1029/2002ja009428.Dst
    61. Jordanova, V. K. (2003), New Insights on Geomagnetic Storms from Model Simulations Using Multi-Spacecraft Data, Space Sci. Rev., 107(1), 157, doi:10.1023/a:1025575807139.Dst
    62. Jordanova, V. K., A. Boonsiriseth, R. M. Thorne, and Y. Dotan (2003), Ring current asymmetry from global simulations using a high-resolution electric field model, J. Geophys. Res. Space Physics, 108(A12), 1443, doi:10.1029/2003ja009993.Dst
    63. Jordanova, V. K., L. M. Kistler, M. F. Thomsen, and C. G. Mouikis (2003), Effects of plasma sheet variability on the fast initial ring current decay, Geophys. Res. Lett., 30(6), 1311, doi:10.1029/2002gl016576.DstSYM-H
    64. Kamio, S., H. Kurokawa, and T. T. Ishii (2003), Precise determination of cooling times of post-flare loops from the detailed comparison between Hα and soft X-ray images, Sol. Phys., 215(1), 127, doi:10.1023/a:1024839732106.Dst
    65. Kataoka, R., H. Fukunishi, and L. J. Lanzerotti (2003), Statistical identification of solar wind origins of magnetic impulse events, J. Geophys. Res. Space Physics, 108(A12), 1436, doi:10.1029/2003ja010202.DstSYM-HSYM-DASY-H
    66. Khalipov, V. L., Y. I. Galperin, A. E. Stepanov, and E. D. Bondar' (2003), Formation of polarization jet during injection of ions into the inner magnetosphere, Adv. Space Res., 31(5), 1303, doi:10.1016/s0273-1177(03)00016-4.AE
    67. Khan, H., M. R. Collier, and T. E. Moore (2003), Case study of solar wind pressure variations and neutral atom emissions observed by IMAGE/LENA, J. Geophys. Res. Space Physics, 108(A12), 1422, doi:10.1029/2003ja009977.SYM-H
    68. Khazanov, G. V., K. V. Gamayunov, and V. K. Jordanova (2003), Self-consistent model of magnetospheric ring current and electromagnetic ion cyclotron waves: The 2-7 May 1998 storm, J. Geophys. Res. Space Physics, 108(A12), 1419, doi:10.1029/2003ja009856.DstAE
    69. Kikuchi, T., K. K. Hashimoto, T.-I. Kitamura, H. Tachihara, and B. Fejer (2003), Equatorial counterelectrojets during substorms, J. Geophys. Res. Space Physics, 108(A11), 1406, doi:10.1029/2003ja009915.AE
    70. Kil, H., L. J. Paxton, X. Pi, M. R. Hairston, and Y. Zhang (2003), Case study of the 15 July 2000 magnetic storm effects on the ionosphere-driver of the positive ionospheric storm in the winter hemisphere, J. Geophys. Res. Space Physics, 108(A11), 1391, doi:10.1029/2002ja009782.DstAE
    71. Kim, H.-J., G. Rostoker, and Y. Kamide (2003), Adiabatic modeling of the relativistic electron fluxes during the storm main phase, Adv. Space Res., 31(4), 1045, doi:10.1016/s0273-1177(02)00810-4.Dst
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    73. Kumamoto, A., T. Ono, M. Iizima, and H. Oya (2003), Seasonal and solar cycle variations of the vertical distribution of the occurrence probability of auroral kilometric radiation sources and of upflowing ion events, J. Geophys. Res. Space Physics, 108(A1), 1032, doi:10.1029/2002ja009522.AE
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    169. Yahnina, T. A., et al. (2003), Energetic particle counterparts for geomagnetic pulsations of Pc1 and IPDP types, Ann. Geophys., 21(12), 2281, doi:10.5194/angeo-21-2281-2003.Dst
    170. Yang, Y.-H., J. K. Chao, A. V. Dmitriev, C.-H. Lin, and D. M. Ober (2003), Saturation of IMF Bz influence on the position of dayside magnetopause, J. Geophys. Res. Space Physics, 108(A3), 1104, doi:10.1029/2002ja009621.Dst
    171. Yuan, Z., B. Ning, L. Liu, W. Wan, and B. Zhao (2003), A new method for determining the meridional wind velocity during an ionospheric storm, Geophys. Res. Lett., 30(6), 1290, doi:10.1029/2002gl016469.AE
    172. Zhang, J., K. P. Dere, R. A. Howard, and V. Bothmer (2003), Identification of Solar Sources of Major Geomagnetic Storms between 1996 and 2000, Astrophys. J., 582(1), 520, doi:10.1086/344611.Dst
    173. Zhang, S. P., J. E. Salah, N. Mitchell, W. Singer, Y. Murayama, R. R. Clark, A. van Eyken, and J. Thayer (2003), Responses of the mesospheric wind at high latitudes to the April 2002 space storm, Geophys. Res. Lett., 30(23), 2225, doi:10.1029/2003gl018521.Dst
    174. Zhang, Y., L. J. Paxton, H. Kil, C.-I. Meng, S. B. Mende, H. U. Frey, and T. J. Immel (2003), Negative ionospheric storms seen by the IMAGE FUV instrument, J. Geophys. Res. Space Physics, 108(A9), 1343, doi:10.1029/2002ja009797.Dst
    175. Zhao, X. P., and D. F. Webb (2003), Source regions and storm effectiveness of frontside full halo coronal mass ejections, J. Geophys. Res. Space Physics, 108(A6), 1234, doi:10.1029/2002ja009606.Dst
    176. Zheng, Y., M.-C. Fok, and G. V. Khazanov (2003), A radiation belt-ring current forecasting model, Space Weather, 1(3), 1013, doi:10.1029/2003sw000007.Dst
    177. Zhou, X.-Y., et al. (2003), Ring current intensification and convection-driven negative bays: Multisatellite studies, J. Geophys. Res. Space Physics, 108(A11), 1407, doi:10.1029/2003ja009881.DstAESYM-HSYM-DASY-H
    178. Zhou, X.-Y., R. J. Strangeway, P. C. Anderson, D. G. Sibeck, B. T. Tsurutani, G. Haerendel, H. U. Frey, and J. K. Arballo (2003), Shock aurora: FAST and DMSP observations, J. Geophys. Res. Space Physics, 108(A4), 8019, doi:10.1029/2002ja009701.AE
    179. ØStgaard, N., D. L. Detrick, T. J. Rosenberg, R. R. Vondrak, H. U. Frey, S. B. Mende, S. E. HâLand, and J. Stadsnes (2003), High-latitude dayside energetic precipitation and IMF BZ rotations, J. Geophys. Res. Space Physics, 108(A4), 8013, doi:10.1029/2002ja009350.DstAE

    2002 178 papers↑ top

    1. Abel, G. A., and M. P. Freeman (2002), A statistical analysis of ionospheric velocity and magnetic field power spectra at the time of pulsed ionospheric flows, J. Geophys. Res. Space Physics, 107(A12), 1470, doi:10.1029/2002ja009402.AE
    2. Afraimovich, E. L., et al. (2002), Simultaneous radio and optical observations of the mid-latitude atmospheric response to a major geomagnetic storm of 6-8 April 2000, J. Atmos. Sol.-Terr. Phys., 64(18), 1943, doi:10.1016/s1364-6826(02)00217-1.AE
    3. Ahn, B.-H., G.-H. Moon, W. Sun, S.-I. Akasofu, G. X. Chen, and Y. D. Park (2002), Universal time variation of the Dst index and the relationship between the cumulative AL and Dst indices during geomagnetic storms, J. Geophys. Res. Space Physics, 107(A11), 1409, doi:10.1029/2002ja009257.DstAE
    4. Aksnes, A., J. Stadsnes, J. Bjordal, N. Østgaard, R. R. Vondrak, D. L. Detrick, T. J. Rosenberg, G. A. Germany, and D. Chenette (2002), Instantaneous ionospheric global conductance maps during an isolated substorm, Ann. Geophys., 20(8), 1181, doi:10.5194/angeo-20-1181-2002.DstAE
    5. Anagnostopoulos, G. C., E. T. Sarris, K. Kudela, and M. Vandas (2002), Simulateneous spectral variation of energetic ions in the nightside magnetosphere and upstream from the bow shock, Adv. Space Res., 30(10), 2253, doi:10.1016/s0273-1177(02)80238-1.AE
    6. Anderson, B. J., K. Takahashi, T. Kamei, C. L. Waters, and B. A. Toth (2002), Birkeland current system key parameters derived from Iridium observations: Method and initial validation results, J. Geophys. Res. Space Physics, 107(A6), 1079, doi:10.1029/2001ja000080.DstAE
    7. Anderson, D., A. Anghel, K. Yumoto, M. Ishitsuka, and E. Kudeki (2002), Estimating daytime vertical ExB drift velocities in the equatorial F-region using ground-based magnetometer observations, Geophys. Res. Lett., 29(12), 1596, doi:10.1029/2001gl014562.Dst
    8. Anderson, P. C., and M. W. Chen (2002), Examination of the storm/substorm relationship using global auroral X-ray images, J. Geophys. Res. Space Physics, 107(A10), 1326, doi:10.1029/2001ja009184.DstAE
    9. Angelopoulos, V., M. Temerin, I. Roth, F. S. Mozer, D. Weimer, and M. R. Hairston (2002), Testing global storm-time electric field models using particle spectra on multiple spacecraft, J. Geophys. Res. Space Physics, 107(A8), 1194, doi:10.1029/2001ja900174.DstAE
    10. Araujo-Pradere, E. A., and T. J. Fuller-Rowell (2002), STORM: An empirical storm-time ionospheric correction model 2. Validation, Radio Sci., 37(5), 1071, doi:10.1029/2002rs002620.Dst
    11. Araujo-Pradere, E. A., T. J. Fuller-Rowell, and M. V. Codrescu (2002), STORM: An empirical storm-time ionospheric correction model 1. Model description, Radio Sci., 37(5), 1070, doi:10.1029/2001rs002467.Dst
    12. Baker, D. N., et al. (2002), Timing of magnetic reconnection initiation during a global magnetospheric substorm onset, Geophys. Res. Lett., 29(24), 2190, doi:10.1029/2002gl015539.AE
    13. Baker, D. N., R. E. Ergun, J. L. Burch, J.-M. Jahn, P. W. Daly, R. Friedel, G. D. Reeves, T. A. Fritz, and D. G. Mitchell (2002), A telescopic and microscopic view of a magnetospheric substorm on 31 March 2001, Geophys. Res. Lett., 29(18), 1862, doi:10.1029/2001gl014491.AE
    14. Ballatore, P. (2002), Effects of fast and slow solar wind on the correlations between interplanetary medium and geomagnetic activity, J. Geophys. Res. Space Physics, 107(A9), 1227, doi:10.1029/2001ja000144.Dst
    15. Belehaki, A., and I. Tsagouri (2002), On the occurrence of storm-induced nighttime ionization enhancements at ionospheric middle latitudes, J. Geophys. Res. Space Physics, 107(A8), 1209, doi:10.1029/2001ja005029.DstAE
    16. Benkevitch, L. V., W. B. Lyatsky, A. V. Koustov, G. J. Sofko, and A. M. Hamza (2002), Substorm onset times as derived from geomagnetic indices, Geophys. Res. Lett., 29(10), 1496, doi:10.1029/2001gl014386.AE
    17. Bhattacharyya, A., S. Basu, K. M. Groves, C. E. Valladares, and R. Sheehan (2002), Effect of magnetic activity on the dynamics of equatorial F region irregularities, J. Geophys. Res. Space Physics, 107(A12), 1489, doi:10.1029/2002ja009644.SYM-H
    18. Borodkova, N. L., A. G. Yahnin, K. Liou, J.-A. Sauvaud, A. O. Fedorov, V. N. Lutsenko, M. N. Nozdrachev, and A. A. Lyubchich (2002), Plasma sheet fast flows and auroral dynamics during substorm: a case study, Ann. Geophys., 20(3), 341, doi:10.5194/angeo-20-341-2002.AE
    19. Brandt, P. C., D. G. Mitchell, Y. Ebihara, B. R. Sandel, E. C. Roelof, J. L. Burch, and R. Demajistre (2002), Global IMAGE/HENA observations of the ring current: Examples of rapid response to IMF and ring current-plasmasphere interaction, J. Geophys. Res. Space Physics, 107(A11), 1359, doi:10.1029/2001ja000084.Dst
    20. Burch, J. L., et al. (2002), Interplanetary magnetic field control of afternoon-sector detached proton auroral arcs, J. Geophys. Res. Space Physics, 107(A9), 1251, doi:10.1029/2001ja007554.Dst
    21. Buresova, D., J. Lastovicka, D. Altadill, and G. Miro (2002), Daytime electron density at the F1-region in Europe during geomagnetic storms, Ann. Geophys., 20(7), 1007, doi:10.5194/angeo-20-1007-2002.Dst
    22. Buzulukova, N. Y., Y. I. Galperin, R. A. Kovrazhkin, A. L. Glazunov, G. A. Vladimirova, H. Stenuit, J. A. Sauvaud, and D. C. Delcourt (2002), Two types of ion spectral gaps in the quiet inner magnetosphere: Interball-2 observations and modeling, Ann. Geophys., 20(3), 349, doi:10.5194/angeo-20-349-2002.AE
    23. Bühler, P., and L. Desorgher (2002), Relativistic electron enhancements, magnetic storms, and substorm activity, J. Atmos. Sol.-Terr. Phys., 64(5-6), 593, doi:10.1016/s1364-6826(02)00017-2.ASY-H
    24. C:Son Brandt, P., R. Demajistre, E. C. Roelof, S. Ohtani, D. G. Mitchell, and S. Mende (2002), IMAGE/high-energy energetic neutral atom: Global energetic neutral atom imaging of the plasma sheet and ring current during substorms, J. Geophys. Res. Space Physics, 107(A12), 1454, doi:10.1029/2002ja009307.AE
    25. Chen, J., and T. A. Fritz (2002), Multiple spacecraft observations of energetic ions during a major geomagnetic storm, Adv. Space Res., 30(7), 1749, doi:10.1016/s0273-1177(02)00444-1.Dst
    26. Chisham, G., I. J. Coleman, M. P. Freeman, M. Pinnock, and M. Lester (2002), Ionospheric signatures of split reconnection X-lines during conditions of IMF Bz < 0 and |By| ∼ |Bz|: Evidence for the antiparallel merging hypothesis, J. Geophys. Res. Space Physics, 107(A10), 1323, doi:10.1029/2001ja009124.AE
    27. Chisham, G., M. Pinnock, I. J. Coleman, M. R. Hairston, and A. D. M. Walker (2002), An unusual geometry of the ionospheric signature of the cusp: implications for magnetopause merging sites, Ann. Geophys., 20(1), 29, doi:10.5194/angeo-20-29-2002.AE
    28. Choe, W., H.-J. Kim, G. Rostoker, and Y. Kamide (2002), Nonlinear time series analysis of interpeak intervals of AL data, J. Geophys. Res. Space Physics, 107(A11), 1392, doi:10.1029/2001ja002010.AE
    29. Christon, S. P., U. Mall, T. E. Eastman, G. Gloeckler, A. T. Y. Lui, R. W. McEntire, and E. C. Roelof (2002), Solar cycle and geomagnetic N+1/O+1 variation in outer dayside magnetosphere: Possible relation to topside ionosphere, Geophys. Res. Lett., 29(5), 1058, doi:10.1029/2001gl013988.Dst
    30. Chun, F. K., D. J. Knipp, M. G. McHarg, J. R. Lacey, G. Lu, and B. A. Emery (2002), Joule heating patterns as a function of polar cap index, J. Geophys. Res. Space Physics, 107(A7), 1119, doi:10.1029/2001ja000246.AE
    31. Cliver, E. W., and A. G. Ling (2002), Secular change in geomagnetic indices and the solar open magnetic flux during the first half of the twentieth century, J. Geophys. Res. Space Physics, 107(A10), 1303, doi:10.1029/2001ja000505.Dst
    32. Clúa de Gonzalez, A. L., V. M. Silbergleit, W. D. Gonzalez, and B. T. Tsurutani (2002), Irregularities in the semiannual variation of the geomagnetic activity, Adv. Space Res., 30(10), 2215, doi:10.1016/s0273-1177(02)80226-5.DstAE
    33. Consolini, G., and P. de Michelis (2002), Fractal time statistics of AE-index burst waiting times: evidence of metastability, Nonlinear Processes Geophys., 9, 419, doi:10.5194/npg-9-419-2002.AE
    34. Consolini, G., and T. Chang (2002), Complexity, magnetic field topology, criticality, and metastability in magnetotail dynamics, J. Atmos. Sol.-Terr. Phys., 64(5-6), 541, doi:10.1016/s1364-6826(02)00011-1.DstAE
    35. Dal Lago, A., W. D. Gonzalez, A. L. C. de Gonzalez, and L. E. A. Vieira (2002), Stream-interacting magnetic clouds causing very intense geomagnetic storms, Adv. Space Res., 30(10), 2225, doi:10.1016/s0273-1177(02)80230-7.Dst
    36. Danilov, A. D., N. V. Smirnova, T. A. Blix, and E. V. Thrane (2002), A new concept of the D-region modeling at high latitudes, Adv. Space Res., 29(6), 919, doi:10.1016/s0273-1177(02)00048-0.AE
    37. Dasso, S., D. Gómez, and C. H. Mandrini (2002), Ring current decay rates of magnetic storms: A statistical study from 1957 to 1998, J. Geophys. Res. Space Physics, 107(A5), 1059, doi:10.1029/2000ja000430.Dst
    38. Denton, M. H., G. J. Bailey, C. R. Wilford, A. S. Rodger, and S. Venkatraman (2002), He+ dominance in the plasmasphere during geomagnetically disturbed periods: 1. Observational results, Ann. Geophys., 20(4), 461, doi:10.5194/angeo-20-461-2002.Dst
    39. Doxas, I., W. Horton, and R. Weigel (2002), Using particle simulations for parameter tuning of dynamical models of the magnetotail, J. Atmos. Sol.-Terr. Phys., 64(5-6), 633, doi:10.1016/s1364-6826(02)00022-6.AE
    40. Drezet, P. M., R. F. Harrison, and M. Balikhin (2002), A kernel-based technique for forecasting geomagnetic activity and prediction of Dst, Adv. Space Res., 30(10), 2181, doi:10.1016/s0273-1177(02)80216-2.Dst
    41. Dubyagin, S. V., V. A. Sergeev, and M. V. Kubyshkina (2002), On the remote sensing of plasma sheet from low-altitude spacecraft, J. Atmos. Sol.-Terr. Phys., 64(5-6), 567, doi:10.1016/s1364-6826(02)00014-7.AE
    42. Ebihara, Y., M. Ejiri, H. Nilsson, I. Sandahl, A. Milillo, M. Grande, J. F. Fennell, and J. L. Roeder (2002), Statistical distribution of the storm-time proton ring current: POLAR measurements, Geophys. Res. Lett., 29(20), 1969, doi:10.1029/2002gl015430.Dst
    43. Emmert, J. T., B. G. Fejer, G. G. Shepherd, and B. H. Solheim (2002), Altitude dependence of middle and low-latitude daytime thermospheric disturbance winds measured by WINDII, J. Geophys. Res. Space Physics, 107(A12), 1483, doi:10.1029/2002ja009646.AE
    44. Eriksson, S., L. G. Blomberg, and D. R. Weimer (2002), Comparing a spherical harmonic model of the global electric field distribution with Astrid-2 observations, J. Geophys. Res. Space Physics, 107(A11), 1391, doi:10.1029/2002ja009313.AE
    45. Farrugia, C. J., et al. (2002), Wind and ACE observations during the great flow of 1-4 May 1998: Relation to solar activity and implications for the magnetosphere, J. Geophys. Res. Space Physics, 107(A9), 1240, doi:10.1029/2001ja000188.Dst
    46. Fejer, B. G. (2002), Low latitude storm time ionospheric electrodynamics, J. Atmos. Sol.-Terr. Phys., 64(12-14), 1401, doi:10.1016/s1364-6826(02)00103-7.AE
    47. Francia, P., S. Lepidi, and K. Yumoto (2002), Geomagnetic field fluctuations during the passage at the Earth’s orbit of the tail of the 15 16 July 2000 ejecta, Ann. Geophys., 20(8), 1143, doi:10.5194/angeo-20-1143-2002.Dst
    48. Frank, L. A., W. R. Paterson, and J. B. Sigwarth (2002), Observations of plasma injection into the ring current during substorm expansive phase, J. Geophys. Res. Space Physics, 107(A11), 1343, doi:10.1029/2001ja000169.AE
    49. Fu, S. Y., Q. G. Zong, T. A. Fritz, Z. Y. Pu, and B. Wilken (2002), Composition signatures in ion injections and its dependence on geomagnetic conditions, J. Geophys. Res. Space Physics, 107(A10), 1299, doi:10.1029/2001ja002006.DstAE
    50. Fujii, R., S. Oyama, S. C. Buchert, S. Nozawa, and N. Matuura (2002), Field-aligned ion motions in the E and F regions, J. Geophys. Res. Space Physics, 107(A5), 1049, doi:10.1029/2001ja900148.AE
    51. Fukata, M., S. Taguchi, T. Okuzawa, and T. Obara (2002), Neural network prediction of relativistic electrons at geosynchronous orbit during the storm recovery phase: effects of recurring substorms, Ann. Geophys., 20(7), 947, doi:10.5194/angeo-20-947-2002.DstAE
    52. Galperin, Y. I. (2002), Polarization Jet: characteristics and a model, Ann. Geophys., 20(3), 391, doi:10.5194/angeo-20-391-2002.DstAE
    53. Ganushkina, N. Y., and T. I. Pulkkinen (2002), Particle tracing in the Earth's magnetosphere and the ring current formation during storm times, Adv. Space Res., 30(7), 1817, doi:10.1016/s0273-1177(02)00455-6.DstAE
    54. Ganushkina, N. Y., T. I. Pulkkinen, and M. V. Kubyshkina (2002), Storm time ring current magnetic field modeling during May 15, 1997 event, Adv. Space Res., 30(10), 2175, doi:10.1016/s0273-1177(02)80214-9.DstAE
    55. Ganushkina, N. Y., T. I. Pulkkinen, M. V. Kubyshkina, H. J. Singer, and C. T. Russell (2002), Modeling the ring current magnetic field during storms, J. Geophys. Res. Space Physics, 107(A7), 1092, doi:10.1029/2001ja900101.Dst
    56. George, B., G. Renuka, K. Satheesh Kumar, C. P. A. Kumar, and C. Venugopal (2002), Nonlinear time series analysis of the fluctuations of the geomagnetic horizontal field, Ann. Geophys., 20(2), 175, doi:10.5194/angeo-20-175-2002.AE
    57. Golovchanskaya, I. V., Y. P. Maltsev, and A. A. Ostapenko (2002), High-latitude irregularities of the magnetospheric electric field and their relation to solar wind and geomagnetic conditions, J. Geophys. Res. Space Physics, 107(A1), 1001, doi:10.1029/2001ja900097.DstAE
    58. Gonzalez, W. D., B. T. Tsurutani, R. P. Lepping, and R. Schwenn (2002), Interplanetary phenomena associated with very intense geomagnetic storms, J. Atmos. Sol.-Terr. Phys., 64(2), 173, doi:10.1016/s1364-6826(01)00082-7.Dst
    59. Grachev, E., O. Grigoryan, J. Juchniewicz, S. Klimov, S. Klimov, K. Kudela, A. Petrov, and J. Stetiarova (2002), Low energy protons on /L<=1.15 in 500 - 1500 km range, Adv. Space Res., 30(7), 1841, doi:10.1016/s0273-1177(02)00460-x.Dst
    60. Greenspan, M. E., and D. C. Hamilton (2002), Relative contributions of H+ and O+ to the ring current energy near magnetic storm maximum, J. Geophys. Res. Space Physics, 107(A4), 1043, doi:10.1029/2001ja000155.Dst
    61. Grigorenko, E. E., A. Fedorov, and L. M. Zelenyi (2002), Statistical study of transient plasma structures in magnetotail lobes and plasma sheet boundary layer: Interball-1 observations, Ann. Geophys., 20(3), 329, doi:10.5194/angeo-20-329-2002.DstAE
    62. Hnat, B., S. C. Chapman, G. Rowlands, N. W. Watkins, and M. P. Freeman (2002), Scaling of solar wind ∊ and the AU, AL and AE indices as seen by WIND, Geophys. Res. Lett., 29(22), 2078, doi:10.1029/2002gl016054.AE
    63. Hsu, T.-S., and R. L. McPherron (2002), An evaluation of the statistical significance of the association between northward turnings of the interplanetary magnetic field and substorm expansion onsets, J. Geophys. Res. Space Physics, 107(A11), 1398, doi:10.1029/2000ja000125.AE
    64. Huang, C. Y., W. J. Burke, J. S. Machuzak, L. C. Gentile, and P. J. Sultan (2002), Equatorial plasma bubbles observed by DMSP satellites during a full solar cycle: Toward a global climatology, J. Geophys. Res. Space Physics, 107(A12), 1434, doi:10.1029/2002ja009452.Dst
    65. Huang, C.-S., J. C. Foster, and P. J. Erickson (2002), Effects of solar wind variations on the midlatitude ionosphere, J. Geophys. Res. Space Physics, 107(A8), 1192, doi:10.1029/2001ja009025.AE
    66. Hubert, B., J.-C. Gérard, D. S. Evans, M. Meurant, S. B. Mende, H. U. Frey, and T. J. Immel (2002), Total electron and proton energy input during auroral substorms: Remote sensing with IMAGE-FUV, J. Geophys. Res. Space Physics, 107(A8), 1183, doi:10.1029/2001ja009229.DstAE
    67. Huttunen, K. E. J., H. E. J. Koskinen, and R. Schwenn (2002), Variability of magnetospheric storms driven by different solar wind perturbations, J. Geophys. Res. Space Physics, 107(A7), 1121, doi:10.1029/2001ja900171.Dst
    68. Huttunen, K. E. J., H. E. J. Koskinen, T. I. Pulkkinen, A. Pulkkinen, M. Palmroth, E. G. D. Reeves, and H. J. Singer (2002), April 2000 magnetic storm: Solar wind driver and magnetospheric response, J. Geophys. Res. Space Physics, 107(A12), 1440, doi:10.1029/2001ja009154.DstAESYM-H
    69. Hysell, D. L., and J. D. Burcham (2002), Long term studies of equatorial spread /F using the JULIA radar at Jicamarca, J. Atmos. Sol.-Terr. Phys., 64(12-14), 1531, doi:10.1016/s1364-6826(02)00091-3.AE
    70. Häkkinen, L. V. T., T. I. Pulkkinen, H. Nevanlinna, R. J. Pirjola, and E. I. Tanskanen (2002), Effects of induced currents on Dst and on magnetic variations at midlatitude stations, J. Geophys. Res. Space Physics, 107(A1), 1014, doi:10.1029/2001ja900130.DstSYM-H
    71. Iles, R. H. A., A. N. Fazakerley, A. D. Johnstone, N. P. Meredith, and P. Bühler (2002), The relativistic electron response in the outer radiation belt during magnetic storms, Ann. Geophys., 20(7), 957, doi:10.5194/angeo-20-957-2002.Dst
    72. Innis, J. L., and M. Conde (2002), High-latitude thermospheric vertical wind activity from Dynamics Explorer 2 Wind and Temperature Spectrometer observations: Indications of a source region for polar cap gravity waves, J. Geophys. Res. Space Physics, 107(A8), 1172, doi:10.1029/2001ja009130.AE
    73. Jadhav, G., M. Rajaram, and R. Rajaram (2002), A detailed study of equatorial electrojet phenomenon using Ørsted satellite observations, J. Geophys. Res. Space Physics, 107(A8), 1175, doi:10.1029/2001ja000183.Dst
    74. Jankovičová, D., P. Dolinský, F. Valach, and Z. Vörös (2002), Neural network-based nonlinear prediction of magnetic storms, J. Atmos. Sol.-Terr. Phys., 64(5-6), 651, doi:10.1016/s1364-6826(02)00025-1.Dst
    75. Jurac, S., J. C. Kasper, J. D. Richardson, and A. J. Lazarus (2002), Geomagnetic disturbances and their relationship to Interplanetary shock parameters, Geophys. Res. Lett., 29(10), 1463, doi:10.1029/2001gl014034.Dst
    76. Kahler, S., and A. Ling (2002), Comparisons of high latitude E > 20 MeV proton geomagnetic cutoff observations with predictions of the SEPTR model, Ann. Geophys., 20(7), 997, doi:10.5194/angeo-20-997-2002.Dst
    77. Kavanagh, A. J., F. Honary, I. W. McCrea, E. Donovan, E. E. Woodfield, J. Manninen, and P. C. Anderson (2002), Substorm related changes in precipitation in the dayside auroral zone a multi instrument case study, Ann. Geophys., 20(9), 1321, doi:10.5194/angeo-20-1321-2002.DstAE
    78. Khazanov, G. V., K. V. Gamayunov, V. K. Jordanova, and E. N. Krivorutsky (2002), A self-consistent model of the interacting ring current ions and electromagnetic ion cyclotron waves, initial results: Waves and precipitating fluxes, J. Geophys. Res. Space Physics, 107(A6), 1085, doi:10.1029/2001ja000180.Dst
    79. Kleimenova, N. G., O. V. Kozyreva, K. Kauristie, J. Manninen, and A. Ranta (2002), Case studies on the dynamics of Pi3 geomagnetic and riometer pulsations during auroral activations, Ann. Geophys., 20(2), 151, doi:10.5194/angeo-20-151-2002.AE
    80. Korth, A., R. H. W. Friedel, F. Frutos-Alfaro, C. G. Mouikis, and Q. Zong (2002), Ion composition of substorms during storm-time and non-storm-time periods, J. Atmos. Sol.-Terr. Phys., 64(5-6), 561, doi:10.1016/s1364-6826(02)00013-5.AE
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    82. Kotzé, P. B. (2002), Modelling and analysis of Ørsted total field data over Southern Africa, Geophys. Res. Lett., 29(15), 8004, doi:10.1029/2001gl013868.Dst
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