日本地球惑星科学連合2022年大会

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[E] 口頭発表

セッション記号 P (宇宙惑星科学) » P-EM 太陽地球系科学・宇宙電磁気学・宇宙環境

[P-EM11] Dynamics of the Inner Magnetospheric System

2022年5月25日(水) 09:00 〜 10:30 303 (幕張メッセ国際会議場)

コンビーナ:桂華 邦裕(東京大学大学院理学系研究科地球惑星科学専攻)、コンビーナ:三好 由純(名古屋大学宇宙地球環境研究所)、Blum Lauren W(University of Colorado Boulder)、コンビーナ:Shprits Yuri(Helmholtz Centre Potsdam GFZ German Research Centre for Geosciences)、座長:松田 昇也(金沢大学)、桂華 邦裕(東京大学大学院理学系研究科地球惑星科学専攻)


10:15 〜 10:30

[PEM11-05] Effective energy range of electrons exciting whistler-mode chorus emissions in the inner magnetosphere

*大村 善治1野儀 武志1 (1.京都大学生存圏研究所)

キーワード:波動粒子相互作用、放射線帯、非線形過程

Whistler-mode chorus emissions are frequently observed outside the plasmapause, and they control the dynamics of energetic electrons including relativistic electrons of the outer radiation belt. Chorus emissions are generated through nonlinear cyclotron resonance with energetic electrons with temperature anisotropy [1]. The nonlinear process is started from a triggering wave growing from thermal fluctuations with the maximum linear growth rate or a triggering wave artificially injected in the equatorial region. We have conducted electromagnetic particle simulations reproducing chorus emissions from a triggering wave injected at the equator with different frequencies and parameters. We find the generation of subpackets of chorus emissions with rising-tone frequency at slightly different locations near the magnetic equator. The generation region moves upstream or downstream depending on frequencies of the triggering wave. We have found that the generation of subpackets moves with the source velocity which is a sum of the group velocity and the resonance velocity [2]. Especially when the source velocity is slightly negative, a long rising-tone subpacket is generated through formation of an electron hole in velocity phase space stretched over the equator. The long rising-tone emission is very effective in accelerating electrons to relativistic energies in a short time [3]. The condition for the small negative source velocity can determine the effective energy ranges of electrons that can generate chorus emissions in the magnetosphere.

References:
[1] Y. Omura (2021), Nonlinear wave growth theory of whistler-mode chorus and hiss emissions in the magnetosphere, Earth Planets Space 73, 95.
[2] T. Nogi, and Y. Omura (2022), Nonlinear signatures of VLF-triggered emissions: A simulation study, Journal of Geophysical Research: Space Physics, 127, e2021JA029826.
[3] J.C. Foster, P.J. Erickson, Y. Omura (2021), Subpacket structure in strong VLF chorus rising tones: characteristics and consequences for relativistic electron acceleration, Earth, Planets and Space 73, 140.