Open Access
| Issue |
J. Space Weather Space Clim.
Volume 16, 2026
|
|
|---|---|---|
| Article Number | 18 | |
| Number of page(s) | 13 | |
| DOI | https://doi.org/10.1051/swsc/2026007 | |
| Published online | 20 May 2026 | |
- Alves, MV, Echer E, Gonzalez WD. 2006. Geoeffectiveness of corotating interaction regions as measured by Dst index. J. Geophys. Res. Space Physics 111: 2005JA011379. https://doi.org/10.1029/2005JA011379. [Google Scholar]
- Anderson, BJ, Takahashi K, Kamei T, Waters CL, Toth BA. 2002. Birkeland current system key parameters derived from Iridium observations: Method and initial validation results. J. Geophys. Res. Space Physics 107: SMP 11-1-SMP 11-13. https://doi.org/10.1029/2001JA000080. [Google Scholar]
- Araki, T, Funato K, Iguchi T, Kamei T. 1993. Direct detection of solar wind dynamic pressure effect on ground geomagnetic field. Geophys. Res. Lett. 20: 775–778. https://doi.org/10.1029/93GL00852. [Google Scholar]
- Axford, WI, Hines CO. 1961. A unifying theory of high-latitude geophyaical phenomena and geomagnetic storms. Can. J. Phys. 39: 1433–1464. https://doi.org/10.1139/p61-172. [Google Scholar]
- Baker, KB, Wing S. 1989. A new magnetic coordinate system for conjugate studies at high latitudes. J. Geophys. Res. 94: 9139–9143. https://doi.org/10.1029/JA094iA07p09139. [Google Scholar]
- Belcher, JW, Davis L. 1971. Large-amplitude Alfvén waves in the interplanetary medium, 2. J. Geophys. Res. 76: 3534–3563. https://doi.org/10.1029/JA076i016p03534. [Google Scholar]
- Birkeland, K. 1908. The Norwegian Aurora Polaris Expedition, 1902-1903 (Vol. 1). H. Aschelhoug, Christiania. https://doi.org/10.5962/bhl.title.17857. [Google Scholar]
- Burlaga, LF, Sittler E, Mariani F, Schwenn R. 1981. Magnetic loop behind an interplanetary shock: Voyager, Helios, and IMP 8 observations. J. Geophys. Res. Space Physics 86: 6673–6684. https://doi.org/10.1029/JA086iA08p06673. [Google Scholar]
- Chi, Y, Shen C, Luo B, Wang Y, Xu M. 2018. Geoeffectiveness of Stream Interaction Regions From 1995 to 2016. Space Weather 16: 1960–1971. https://doi.org/10.1029/2018SW001894. [Google Scholar]
- Coleman, PJ. 1966. Hydromagnetic Waves in the Interplanetary Plasma. Phys. Rev. Lett. 17: 207–211. https://doi.org/10.1103/PhysRevLett.17.207. [Google Scholar]
- Coxon, JC, Milan SE, Clausen LBN, Anderson BJ, Korth H. 2014a. A superposed epoch analysis of the regions 1 and 2 Birkeland currents observed by AMPERE during substorms. J. Geophys. Res. Space Physics 119: 9834–9846. https://doi.org/10.1002/2014JA020500. [Google Scholar]
- Coxon, JC, Milan SE, Clausen LBN, Anderson BJ, Korth H. 2014b. The magnitudes of the regions 1 and 2 Birkeland currents observed by AMPERE and their role in solar wind-magnetosphere-ionosphere coupling. J. Geophys. Res. Space Physics 119: 9804–9815. https://doi.org/10.1002/2014JA020138. [Google Scholar]
- Coxon, JC, Milan SE, Carter JA, Clausen LBN, Anderson BJ, et al. 2016. Seasonal and diurnal variations in AMPERE observations of the Birkeland currents compared to modeled results. J. Geophys. Res. Space Physics 121: 4027–4040. https://doi.org/10.1002/2015JA022050. [Google Scholar]
- Dessler, AJ, Parker EN. 1959. Hydromagnetic theory of geomagnetic storms. J. Geophys. Res. 64: 2239–2252. https://doi.org/10.1029/JZ064i012p02239. [Google Scholar]
- Dungey, JW. 1961. Interplanetary Magnetic Field and the Auroral Zones. Phys. Rev. Lett. 6: 47–48. https://doi.org/10.1103/PhysRevLett.6.47. [Google Scholar]
- Fujii, R, Iijima T, Potemra TA, Sugiura M. 1981. Seasonal dependence of large-scale Birkeland currents. Geophys. Res. Lett. 8: 1103–1106. https://doi.org/10.1029/GL008i010p01103. [Google Scholar]
- Gjerloev, JW. 2009. A global ground-based magnetometer initiative. EOS Trans. Am. Geophys. Union 90: 230–231. https://doi.org/10.1029/2009EO270002. [Google Scholar]
- Gonzalez, WD, Tsurutani BT. 1987. Criteria of interplanetary parameters causing intense magnetic storms (Dst < −100 nT). Planet Space Sci 35: 1101–1109. https://doi.org/10.1016/0032-0633(87)90015-8. [Google Scholar]
- Gonzalez, WD, Joselyn JA, Kamide Y, Kroehl HW, Rostoker G, et al. 1994. What is a geomagnetic storm? J. Geophys. Res. Space Physics 99: 5771–5792. https://doi.org/10.1029/93JA02867. [Google Scholar]
- Gosling, JT, Asbridge JR, Bame SJ, Feldman WC. 1976. Solar wind speed variations: 1962-1974. J. Geophys. Res. 81: 5061–5070. https://doi.org/10.1029/JA081i028p05061. [Google Scholar]
- Grinsted, A, Moore JC, Jevrejeva S. 2004. Application of the cross wavelet transform and wavelet coherence to geophysical time series. Nonlinear Process. Geophys. 11: 561–566. https://doi.org/10.5194/npg-11-561-2004. [Google Scholar]
- Hajra, R. 2021. Seasonal dependence of the Earth’s radiation belt – new insights. Ann. Geophys. 39: 181–187. https://doi.org/10.5194/angeo-39-181-2021. [Google Scholar]
- Hajra, R, Tsurutani BT. 2018. Magnetospheric “Killer” Relativistic Electron Dropouts (REDs) and Repopulation: A Cyclical Process. In Extreme Events in Geospace (pp. 373–400). Elsevier. https://doi.org/10.1016/B978-0-12-812700-1.00014-5. [Google Scholar]
- Hajra, R, Echer E, Tsurutani BT, Gonzalez WD. 2013. Solar cycle dependence of High-Intensity Long-Duration Continuous AE Activity (HILDCAA) events, relativistic electron predictors? J. Geophys. Res. Space Physics 118: 5626–5638. https://doi.org/10.1002/jgra.50530. [Google Scholar]
- Hajra, R, Tsurutani BT, Echer E, Gonzalez WD. 2014a. Relativistic electron acceleration during high-intensity, long-duration, continuous AE activity (HILDCAA) events: Solar cycle phase dependences: Relativistic electrons during HILDCAAs. Geophys. Res. Lett. 41: 1876–1881. https://doi.org/10.1002/2014GL059383. [Google Scholar]
- Hajra, R, Echer E, Tsurutani BT, Gonzalez WD. 2014b. Superposed epoch analyses of HILDCAAs and their interplanetary drivers: Solar cycle and seasonal dependences. J Atmos Sol Terr Phys 121: 24–31. https://doi.org/10.1016/j.jastp.2014.09.012. [Google Scholar]
- Hajra, R, Tsurutani BT, Echer E, Gonzalez WD, Santolik O. 2015a. Relativistic (E > 0.6, > 2.0, and > 4.0 MeV) electron acceleration at geosynchronous orbit during high-intensity, long-duration, continuous AE activity (HILDCAA) events. Astrophys. J. 799: 39. https://doi.org/10.1088/0004-637X/799/1/39. [Google Scholar]
- Hajra, R, Tsurutani BT, Echer E, Gonzalez WD, Brum CGM, et al. 2015b. Relativistic electron acceleration during HILDCAA events: are precursor CIR magnetic storms important? Earth Planet Space 67: 109. https://doi.org/10.1186/s40623-015-0280-5. [Google Scholar]
- Hajra, R, Franco AMS, Echer E, Bolzan MJA. 2021. Long-term variations of the geomagnetic activity: a comparison between the strong and weak solar activity cycles and implications for the space climate. J. Geophys. Res. Space Physics 126: e2020JA028695. https://doi.org/10.1029/2020JA028695. [Google Scholar]
- Hajra, R, Echer E, Franco AMS, Bolzan MJA. 2023. Earth’s magnetotail variability during supersubstorms (SSSs): A study on solar wind–magnetosphere–ionosphere coupling. Adv. Space Res. 72: 1208–1223. https://doi.org/10.1016/j.asr.2023.04.013. [Google Scholar]
- Hajra, R, Tsurutani BT, Lakhina GS, Lu Q, Du A. 2024a. Interplanetary Causes and Impacts of the 2024 May Superstorm on the Geosphere: An Overview. Astrophys. J. 974: 264. https://doi.org/10.3847/1538-4357/ad7462. [Google Scholar]
- Hajra, R, Tsurutani BT, Lu Q, Horne RB, Lakhina GS, et al. 2024b. The April 2023 SYM-H = −233 nT Geomagnetic Storm: A Classical Event. J. Geophys. Res. Space Physics 129: e2024JA032986. https://doi.org/10.1029/2024JA032986. [Google Scholar]
- Hajra, R, Tsurutani BT, Lu Q, Lakhina GS., Du A, et al. 2024c. Ultra-relativistic Electron Acceleration during High-intensity Long-duration Continuous Auroral Electrojet Activity Events. Astrophys. J. 965: 146. https://doi.org/10.3847/1538-4357/ad2dfe. [Google Scholar]
- Hajra, R, Tsurutani BT, Lu Q, Du A, Lu S, et al. 2025a. Field-Aligned Currents during High-Intensity Long-Duration Continuous Auroral Electrojet Activity Events: A Statistical Study. Space Weather 23: e2025SW004353. https://doi.org/10.1029/2025SW004353. [Google Scholar]
- Hajra, R, Tsurutani BT, Lu Q, Du A. 2025b. Field-Aligned Currents during High-Intensity Long-Duration Continuous Auroral Electrojet Activity Events: Seasonal Dependences. Space Weather 23: e2025SW004354. https://doi.org/10.1029/2025SW004354. [Google Scholar]
- Hajra, R, Tsurutani BT, Lu Q, Du A, Lu S, et al. 2025c. Solar cycle and seasonal dependences of field-aligned currents. Space Weather 23: e2025SW004441. https://doi.org/10.1029/2025SW004441. [Google Scholar]
- Iijima, T, Potemra TA. 1976. The amplitude distribution of field-aligned currents at northern high latitudes observed by Triad. J. Geophys. Res. 81: 2165–2174. https://doi.org/10.1029/JA081i013p02165. [Google Scholar]
- Iijima, T, Potemra TA. 1978. Large-scale characteristics of field-aligned currents associated with substorms. J. Geophys. Res. Space Physics 83: 599–615. https://doi.org/10.1029/JA083iA02p00599. [Google Scholar]
- Iyemori, T. 1990. Storm-time magnetospheric currents inferred from mid-latitude geomagnetic field variations. J. Geomagn. Geoelectr. 42: 1249–1265. https://doi.org/10.5636/jgg.42.1249. [Google Scholar]
- Kennel, CF, Edmiston JP, Hada T. 1985. A Quarter Century of Collisionless Shock Research. In RG Stone, BT Tsurutani (Eds.), Geophys Mono Ser, Am Geophys Union, Washington, D.C., pp. 1–36. https://doi.org/10.1029/GM034p0001. [Google Scholar]
- King, JH, Papitashvili NE. 2020. OMNI 1-min Data Set [Data set]. NASA Space Physics Data Facility. https://doi.org/10.48322/45BB-8792. [Google Scholar]
- Knipp, DJ, Matsuo T, Kilcommons L, Richmond A, Anderson B, et al. 2014. Comparison of magnetic perturbation data from LEO satellite constellations: Statistics of DMSP and AMPERE. Space Weather 12: 2–23. https://doi.org/10.1002/2013SW000987. [Google Scholar]
- Korth, A, Echer E, Zong QG, Guarnieri FL, Fraenz M, et al. 2011. The response of the polar cusp to a high-speed solar wind stream studied by a multispacecraft wavelet analysis. J Atmos Sol Terr Phys 73: 52–60. https://doi.org/10.1016/j.jastp.2009.10.004. [Google Scholar]
- Krieger, AS, Timothy AF, Roelof EC. 1973. A coronal hole and its identification as the source of a high velocity solar wind stream. Sol. Phys. 29: 505–525. https://doi.org/10.1007/BF00150828. [Google Scholar]
- Lakhina, GS, Tsurutani BT, Kojima H, Matsumoto H. 2000. “Broadband” plasma waves in the boundary layers. J. Geophys. Res. Space Physics 105: 27791–27831. https://doi.org/10.1029/2000JA900054. [Google Scholar]
- Lakhina, GS, Tsurutani BT, Singh SV, Reddy RV. 2003. Some theoretical models for solitary structures of boundary layer waves. Nonlinear Process. Geophys. 10: 65–73. https://doi.org/10.5194/npg-10-65-2003. [Google Scholar]
- Le, G, Lühr H, Anderson BJ, Strangeway RJ, Russell CT, et al. 2016. Magnetopause erosion during the 17 March 2015 magnetic storm: Combined field-aligned currents, auroral oval, and magnetopause observations. Geophys. Res. Lett. 43: 2396–2404https://doi.org/10.1002/2016GL068257. [Google Scholar]
- Lindblad, BA, Lundstedt H. 1981. A catalogue of high-speed plasma streams in the solar wind. Sol. Phys. 74: 197–206. https://doi.org/10.1007/BF00151290. [Google Scholar]
- Lomb, NR. 1976. Least-squares frequency analysis of unequally spaced data. Astrophys Space Sci 39: 447–462. https://doi.org/10.1007/BF00648343. [CrossRef] [Google Scholar]
- Lyons, LR, Gallardo Lacourt B, Zou S, Weygand JM, Nishimura Y, et al. 2016. The 17 March 2013 storm: Synergy of observations related to electric field modes and their ionospheric and magnetospheric Effects. J. Geophys. Res. Space Physics 121: 10880–10897. https://doi.org/10.1002/2016JA023237. [Google Scholar]
- Marubashi, K, Lepping RP. 2007. Long-duration magnetic clouds: a comparison of analyses using torus- and cylinder-shaped flux rope models. Ann. Geophys. 25: 2453–2477. https://doi.org/10.5194/angeo-25-2453-2007. [Google Scholar]
- McComas, DJ, Barraclough BL, Funsten HO, Gosling JT, Santiago Muñoz E, et al. 2000. Solar wind observations over Ulysses’ first full polar orbit. J. Geophys. Res. Space Physics 105: 10419–10433. https://doi.org/10.1029/1999JA000383. [Google Scholar]
- Milan, SE, Gosling JS, Hubert B. 2012. Relationship between interplanetary parameters and the magnetopause reconnection rate quantified from observations of the expanding polar cap. J. Geophys. Res. Space Physics 117: 2011JA017082. https://doi.org/10.1029/2011JA017082. [Google Scholar]
- Neugebauer, M, Clay DR, Goldstein BE, Tsurutani BT, Zwickl RD. 1984. A reexamination of rotational and tangential discontinuities in the solar wind. J. Geophys. Res. Space Physics 89: 5395–5408. https://doi.org/10.1029/JA089iA07p05395. [Google Scholar]
- Newell, PT, Sotirelis T, Liou K, Meng CI, Rich FJ. 2007. A nearly universal solar wind-magnetosphere coupling function inferred from 10 magnetospheric state variables. J. Geophys. Res. Space Physics 112: 2006JA012015. https://doi.org/10.1029/2006JA012015. [Google Scholar]
- Ohtani, S, Gjerloev JW. 2020. Is the Substorm Current Wedge an Ensemble of Wedgelets?: Revisit to Midlatitude Positive Bays. J. Geophys. Res. Space Physics 125: e2020JA027902. https://doi.org/10.1029/2020JA027902. [Google Scholar]
- Paulikas, GA, Blake JB. 1979. Effects of the Solar Wind on Magnetospheric Dynamics: Energetic Electrons at the Synchronous Orbit. In WP Olson (Ed.), Geophys Mono Ser, Am Geophys Union, Washington, D. C., pp. 180–202. https://doi.org/10.1029/GM021p0180. [Google Scholar]
- Pedersen, MN, Vanhamäki H, Aikio AT, Käki S, Workayehu AB, et al. 2021. Field-aligned and ionospheric currents by AMPERE and SuperMAG during HSS/SIR-driven storms. J. Geophys. Res. Space Physics 126: e2021JA029437. https://doi.org/10.1029/2021JA029437. [Google Scholar]
- Pedersen, MN, Vanhamäki H, Aikio AT, Waters CL, Gjerloev JW, et al. 2022. Effect of ICME-Driven Storms on Field-Aligned and Ionospheric Currents From AMPERE and SuperMAG. J. Geophys. Res. Space Physics 127: e2022JA030423. https://doi.org/10.1029/2022JA030423. [Google Scholar]
- Pedersen, MN, Vanhamäki H, Aikio AT. 2023. Comparison of field-aligned current responses to HSS/SIR, sheath, and magnetic cloud driven geomagnetic storms. Geophys. Res. Lett. 50: e2023GL103151. https://doi.org/10.1029/2023GL103151. [Google Scholar]
- Scargle, JD. 1982. Studies in astronomical time series analysis. II - Statistical aspects of spectral analysis of unevenly spaced data. Astrophys. J. 263: 835. https://doi.org/10.1086/160554. [Google Scholar]
- Sckopke, N. 1966. A general relation between the energy of trapped particles and the disturbance field near the Earth. J. Geophys. Res. 71: 3125–3130. https://doi.org/10.1029/JZ071i013p03125. [Google Scholar]
- Smith, EJ, Wolfe JH. 1976. Observations of interaction regions and corotating shocks between one and five AU: Pioneers 10 and 11. Geophys. Res. Lett. 3: 137–140. https://doi.org/10.1029/GL003i003p00137. [Google Scholar]
- Souza, AM, Echer E, Bolzan MJA, Hajra R. 2016. A study on the main periodicities in interplanetary magnetic field Bz component and geomagnetic AE index during HILDCAA events using wavelet analysis. J Atmos Sol Terr Phys 149: 81–86. https://doi.org/10.1016/j.jastp.2016.09.006. [Google Scholar]
- Souza, AM, Echer E, Bolzan MJA, Hajra R. 2018. Cross-correlation and cross-wavelet analyses of the solar wind IMF Bz and auroral electrojet index AE coupling during HILDCAAs. Ann. Geophys. 36: 205–211. https://doi.org/10.5194/angeo-36-205-2018. [Google Scholar]
- Student. 1908. The Probable Error of a Mean. Biometrika 6: 1. https://doi.org/10.2307/2331554. [Google Scholar]
- Tanskanen, EI, Slavin JA, Tanskanen AJ, Viljanen A, Pulkkinen TI, et al. 2005. Magnetospheric substorms are strongly modulated by interplanetary high-speed streams. Geophys. Res. Lett. 32: 2005GL023318. https://doi.org/10.1029/2005GL023318. [Google Scholar]
- Tsurutani, BT, Gonzalez WD. 1987. The cause of high-intensity long-duration continuous AE activity (HILDCAAs): Interplanetary Alfvén wave trains. Planet Space Sci 35: 405–412. https://doi.org/10.1016/0032-0633(87)90097-3. [Google Scholar]
- Tsurutani, BT, Lakhina GS. 2014. An extreme coronal mass ejection and consequences for the magnetosphere and Earth. Geophys. Res. Lett. 41: 287–292https://doi.org/10.1002/2013GL058825. [Google Scholar]
- Tsurutani, BT, Gonzalez WD, Tang F, Akasofu SI, Smith EJ. 1988. Origin of interplanetary southward magnetic fields responsible for major magnetic storms near solar maximum (1978–1979). J. Geophys. Res. Space Physics 93: 8519–8531. https://doi.org/10.1029/JA093iA08p08519. [Google Scholar]
- Tsurutani, BT, Gonzalez WD, Gonzalez ALC, Tang F, Arballo JK, et al. 1995. Interplanetary origin of geomagnetic activity in the declining phase of the solar cycle. J. Geophys. Res. Space Physics 100: 21717–21733. https://doi.org/10.1029/95JA01476. [Google Scholar]
- Tsurutani, BT, Lakhina GS, Ho CM, Arballo, JK, Galvan C, et al. 1998. Broadband plasma waves observed in the polar cap boundary layer: Polar. J. Geophys. Res. Space Physics 103: 17351–17366. https://doi.org/10.1029/97JA03063. [Google Scholar]
- Tsurutani, BT, Zhou XY, Vasyliunas VM, Haerendel G, Arballo JK, et al. 2001. Interplanetary Shocks, Magnetopause Boundary Layers and Dayside Auroras: The Importance of a Very Small Magnetospheric Region. Surv. Geophys. 22: 101–130. https://doi.org/10.1023/A:1012952414384. [Google Scholar]
- Tsurutani, BT, Gonzalez WD, Gonzalez ALC, Guarnieri FL, Gopalswamy N, et al. 2006a. Corotating solar wind streams and recurrent geomagnetic activity: A review. J. Geophys. Res. 111: A07S01. https://doi.org/10.1029/2005JA011273. [Google Scholar]
- Tsurutani, BT, McPherron RL, Gonzalez WD, Lu G, Gopalswamy N, et al. 2006b. Magnetic storms caused by corotating solar wind streams. In BT Tsurutani, R McPherron, W Gonzalez, G Lu, JHA Sobral, N Gopalswamy (Eds.), Geophys Mono Ser (Vol. 167, pp. 1–17). Washington, D. C.: Am Geophys Union. https://doi.org/10.1029/167GM03. [Google Scholar]
- Tsurutani, BT, Echer E, Gonzalez WD. 2011. The solar and interplanetary causes of the recent minimum in geomagnetic activity (MGA23): a combination of midlatitude small coronal holes, low IMF BZ variances, low solar wind speeds and low solar magnetic fields. Ann. Geophys. 29, 839–849. https://doi.org/10.5194/angeo-29-839-2011. [Google Scholar]
- Tsurutani, BT, Lakhina GS, Verkhoglyadova OP, Gonzalez WD, Echer E, et al. 2011b. A review of interplanetary discontinuities and their geomagnetic effects. J Atmos Sol Terr Phys 73: 5–19. https://doi.org/10.1016/j.jastp.2010.04.001. [Google Scholar]
- Tsurutani, BT, Hajra R, Echer E, Gonzalez WD, Santolik O. 2016, June 1. Predicting Magnetospheric Relativistic >1 MeV Electrons (Version 40). Retrieved from http://www.techbriefs.com/component/content/article/ntb/tech-briefs/software/24815. [Google Scholar]
- Tsurutani, BT, Hajra R, Lakhina GS, Meng X. 2024. Revisiting the superstorm on 6–7 April 2000 caused by an extraordinary corotating interaction region (With an Embedded Coronal Jet?). J. Geophys. Res. Space Physics 129: e2024JA032989. https://doi.org/10.1029/2024JA032989. [Google Scholar]
- Wang, H, Lühr H. 2023. Magnetic longitudinal and local time variations of polar electrojet and field-aligned currents. J. Geophys. Res. Space Physics 128: e2023JA031874. https://doi.org/10.1029/2023JA031874. [Google Scholar]
- Wang, H, Lühr H, Ma SY. 2005. Solar zenith angle and merging electric field control of field-aligned currents: A statistical study of the Southern Hemisphere. J. Geophys. Res. Space Physics 110: 2004JA010530. https://doi.org/10.1029/2004JA010530. [Google Scholar]
- Wang, H, Lühr H, Ma SY, Weygand J, Skoug RM, et al. 2006. Field-aligned currents observed by CHAMP during the intense 2003 geomagnetic storm events. Ann. Geophys. 24: 311–324. https://doi.org/10.5194/angeo-24-311-2006. [Google Scholar]
- Wang, H, Cheng Q, Lühr H, Zhong Y, Zhang K, et al. 2024. Local time and hemispheric asymmetries of field-aligned currents and polar electrojet during May 2024 superstorm periods. J. Geophys. Res. Space Physics 129: e2024JA033020. https://doi.org/10.1029/2024JA033020. [Google Scholar]
- Waters, CL, Anderson BJ, Liou K. 2001. Estimation of global field aligned currents using the iridium® System magnetometer data. Geophys. Res. Lett. 28: 2165–2168. https://doi.org/10.1029/2000GL012725. [Google Scholar]
- Wilder, FD, Crowley G, Anderson BJ, Richmond AD. 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: 2011JA017262https://doi.org/10.1029/2011JA017262. [Google Scholar]
- Zhong, Y, Wang H, Zhang K, Xia H, Qian C. 2022. Local time response of auroral electrojet during magnetically disturbed periods: DMSP and CHAMP coordinated observations. J. Geophys. Res. Space Physics 127: e2022JA030624. https://doi.org/10.1029/2022JA030624. [Google Scholar]
- Zirker, JB. 1977. Coronal holes and high-speed wind streams. Rev. Geophys. 15: 257–269. https://doi.org/10.1029/RG015i003p00257. [Google Scholar]
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