FEATURES OF PROPAGATION OF COMPRESSIONAL LONG-PERIOD OSCILLATIONS PENETRATING FROM THE INTERPLANETARY MEDIUM IN THE MAGNETOSPHERE—IONOSPHERE SYSTEM
- Autores: Moiseev A.V.1, Popov V.I.2, Mishin V.V.3, Penskikh Y.V.3
-
Afiliações:
- Yu.G. Shafer Institute of Cosmophysical Research and Aeronomy SB RAS
- Institute of Solar Terrestrial Physics SB RAS
- Edição: Volume 11, Nº 3 (2025)
- Páginas: 59-69
- Seção: Articles
- URL: https://journals.rcsi.science/2500-0535/article/view/361863
- DOI: https://doi.org/10.12737/stp-113202508
- ID: 361863
Citar
Texto integral
Resumo
Pulsations in this event were caused by both external (oscillations in the solar wind) and internal sources (magnetospheric resonator, which could be excited, among other things, by a substorm). The dynamics of the “fine structure” of a large vortex - small vortices, in the magnetosphere as a whole coincides in propagation velocity and direction with geomagnetic pulsations.
Sobre autores
Aleksey Moiseev
Email: moiseev@ikfia.ysn.ru
ORCID ID: 0000-0003-1206-8099
candidate of physical and mathematical sciences
Vasiliy Popov
Yu.G. Shafer Institute of Cosmophysical Research and Aeronomy SB RAS
Email: volts@mail.ru
candidate of physical and mathematical sciences
Vladimir Mishin
Institute of Solar Terrestrial Physics SB RAS
Email: vladm@iszf.irk.ru
doctor of physical and mathematical sciences
Yury Penskikh
Institute of Solar Terrestrial Physics SB RAS
Email: penskikh@iszf.irk.ru
Bibliografia
Abraham-Shrauner B., Yun S.H. Interplanetary shocks seen by AMES plasma probe on Pioneer 6 and 7. J. Geophys. Res. 1976, vol. 81, pp. 2097–2102. Akasofu S.I., Kimball D.S. The dynamics of the aurora: I. Instabilities of the aurora. J. Atmos Terr. Phys. 1964, vol. 26, pp. 205–211. Alimaganbetov M., Streltsov A.V. ULF waves observed during substorms in the solar wind and on the ground. J. Atmos. Solar-Terr. Phys. 2018, vol. 181, pp. 10–18. Baumjohann W., Treumann R.A. Basic Space Plasma Physics. Imperial College Press, London, 1996. Bazarzhapov A.D., Matveev M.I., Mishin V.M. Geomagnetic variations and storms. Novosibirsk: Nauka, 1979, 248 p. (In Russian). Colburn D.S., Sonett C.P. Discontinuities in the solar wind. Space Sci. Rev. 1966, vol. 5, pp. 439–506. doi: 10.1007/BF00240575. Eselevich M.V., Eselevich V.G. Fractal structure of the heliospheric plasma sheet in the Earth’s orbit. Geomagnetism and Aeronomy. 2005, vol. 45, no. 3, pp. 326–336. Gjerloev J.W. The SuperMAG data processing technique. J. Geophys. Res. 2012, vol. 117, no. A09213. doi: 10.1029/2012JA017683. Glassmeier K.-H., Othmer C., Gramm R., Stellmacher M., Engebretson M. Magnetospheric field-line resonances: A comparative planetology approach. Earth Environment Sci. 1999, vol. 20, pp. 61–109. Hada T., Kennel C.F. Nonlinear evolution of slow waves in the solar wind. J. Geophys. Res. 1985, vol. 90, p. 531. Han D.-S., Yang H.-G., Chen Z.-T., et al. Coupling of perturbations in the solar wind density to global Pi3 pulsations: A case study. J. Geophys. Res. 2007, vol. 112, A05217. doi: 10.1029/2006JA011675. Huang C.-S. Global Pc5 pulsations from the polar cap to the equator: Wave characteristics, phase variations, disturbance current system, and signal transmission. J. Geophys. Res. 2021, vol. 126, e2020JA029093. doi: 10.1029/2020JA029093. Kepko L., Spence H.E. Observations of discrete, global magnetospheric oscillations directly driven by solar wind density variations. J. Geophys. Res. 2003, vol. 108, p. 1257. doi: 10.1029/2002JA009676. Leonovich A.S., Mishin V.V., Cao J.B. Penetration of magnetosonic waves into the magnetosphere: Influence of a transition layer. Ann. Geophys. 2003, vol. 21, pp. 1083–1093. Lunyushkin S.B., Penskikh Y.V. Diagnostics of auroral oval boundaries on the basis of the magnetogram inversion technique. Sol.-Terr. Phys. 2019, vol. 5, no. 2, pp. 97–113. doi: 10.12737/stp-52201913. Mansurov S.M. Magnetic disturbances. Moscow: Publ. House of the USSR Academy of Sciences, 1959, no. 1, pp. 64–71. (In Russian). Mishin V.M. The magnetogram inversion technique and some applications. Space Sci. Rev. 1990, vol. 53, no. 1-2, pp. 83–163. doi: 10.1007/bf00217429. Moiseev A.V., Starodubtsev S.A., Mishin V.V. Features of excitation and azimuthal and meridional propagation of long-period Pi3 oscillations of the geomagnetic field on December 8, 2017. Sol.-Terr. Phys. 2020, vol. 6, no. 3, pp. 56–72. doi: 10.12737/stp-63202007. Moiseev A.V., Popov V.I., Starodubtsev S.A. Comparative analysis of the propagation of magnetic variations and equivalent current vortices of geomagnetic Pc5 pulsations along the meridian and azimuth. Geomagnetism and Aeronomy. 2024a, vol. 64, no. 4, pp. 548–566. doi: 10.31857/S0016794024040093. Moiseev A.V., Popov V.I., Starodubtsev S.A. Investigating azimuthal propagation of Pc5 geomagnetic pulsations and their equivalent current vortices from ground-based and satellite data. Sol.-Terr. Phys. 2024b, vol. 10, no. 3, pp. 104–115. doi: 10.12737/stp-103202412. Nadubovich Yu.A. Collection of articles. Results of research on international geophysical projects. Polar aurora. Moscow: Nauka, 1967, no. 14, p. 77. Parkhomov V.A., Mishin V.V., Borovik L.V. Long-period geomagnetic pulsations caused by the solar wind negative pressure impulse on March 22, 1979 (CDAW-6). Ann. Geophys. 1998, vol. 16, pp. 134–139. Parhomov V.A., Borodkova N.L., Eselevich V.G., Eselevich M.V., Dmitriev A.V., Chilikin V.E. Features of the impact of the solar wind diamagnetic structure on Earth’s magnetosphere. Sol.-Terr. Phys. 2017, vol. 3, no. 4, pp. 47–62. doi: 10.12737/stp-34201705. Penskikh Yu.V. Applying the method of maximum contributions to the magnetogram inversion technique. Sol.-Terr. Phys. 2020, vol. 6, no. 4, pp. 67–76. doi: 10.12737/stp-64202009. Penskikh Yu.V., Lunushkin S.B., Kapustin V.E. Geomagnetic method for automatic diagnostics of auroral oval boundaries in two hemispheres of Earth. Sol.-Terr. Phys. 2021, vol. 7, no. 2, pp. 57–69. doi: 10.12737/stp-72202106. Reeves G.D., Henderson M.G., McLachlan P.S., Belian R.D., Friedel R.H.W., Korth A. Radial propagation of substorm injections. Proc. the Third International Conference on Substorms. Eur. Space Agency Spec. Publ. 1996, ESA SP‐389. p. 579. Saito T. Geomagnetic pulsations. Space Sci. Rev. 1969, vol. 10, iss. 3, pp. 319–412. Saito T. Long-period irregular magnetic pulsation Pi3. Space Sci. Rev. 1978, vol. 21, pp. 427–467. doi: 10.1007/BF00173068. Saito T., Matsushita S. Geomagnetic pulsations associated with sudden commencements and sudden impulses. Planetary Space Sci. 1967, vol. 15, pp. 573–587. Samsonov V.P., Zaretsky N.S. Azimuthal and geographical distribution of auroral rays. Geomagnetism and Aeronomy. 1963, vol. 3, no. 2, p. 246. Senko P.K. Coastal effect in magnetic variations. M.: 1959, 61 p. Shpynev G.B., Mishin V.M., Mishin E.V. Research on geomagnetism, aeronomy and physics of the Sun. M.: Nauka, 1977, vol. 43, pp. 3–13. Tsyganenko N.A., Sitnov M.I. Modeling the dynamics of the inner magnetosphere during strong geomagnetic storms. J. Geophys. Res. 2005, vol. 110, A03208. doi: 10.1029/2004JA010798. Vanhamäki H., Juusola L. Introduction to spherical elementary current systems. Ionospheric Multi-Spacecraft Analysis Tools. 2020, vol. 17, pp. 5–33. doi: 10.1007/978-3-030-26732-2_13. URL: https://supermag.jhuapl.edu/mag/ (accessed March 7, 2024). URL: http://cdaweb.gsfc.nasa.gov/ (accessed March 7, 2024). URL: https://link.springer.com/chapter/10.1007/978-3-030-26732-2_2#Sec18 (accessed March 7, 2024).
Arquivos suplementares
