相对论电子通量衰减和恢复:电磁波、合唱波和电子注入的相对作用

IF 2.6 2区 地球科学 Q2 ASTRONOMY & ASTROPHYSICS
Zijin Zhang, Anton Artemyev, Didier Mourenas, Vassilis Angelopoulos, Xiao-Jia Zhang, S. Kasahara, Y. Miyoshi, A. Matsuoka, Y. Kasahara, T. Mitani, S. Yokota, T. Hori, K. Keika, T. Takashima, M. Teramoto, S. Matsuda, I. Shinohara
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引用次数: 0

摘要

我们通过分析几个关键物理过程的相互作用来研究地球外辐射带中相对论电子的动力学:电磁离子回旋波和合唱波的螺距角散射导致的电子损失,以及从等离子体片注入的100-300 keV种子电子的合唱波驱动的加速导致的电子通量增加。我们研究了2021年4月17日的弱地磁风暴,使用了各种航天器的观测数据,包括GOES, Van Allen探测器,ERG/ARASE, MMS, ELFIN和POES。尽管外辐射带有强烈的主位波和合唱波驱动的电子沉淀,但被捕获的0.1-1.5 MeV电子通量实际上增加了。我们利用合唱波和主位波的准线性扩散率的理论估计,基于它们波功率分布的统计,来检验这些波在观测到的相对论性电子通量变化中的作用。我们发现,通过等离子体片注入大量100-300 keV的电子,加上合唱波驱动的加速度,可以克服合唱波和主波驱动的电子通过俯仰角散射向损失锥的损失速率,解释了观察到的电子通量的净增加。我们的研究强调了同时考虑共振波粒相互作用和模拟注入后电子相空间密度的局部能量梯度的重要性,以准确预测捕获电子通量的动态演变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Relativistic Electron Flux Decay and Recovery: Relative Roles of EMIC Waves, Chorus Waves, and Electron Injections

We investigate the dynamics of relativistic electrons in the Earth's outer radiation belt by analyzing the interplay of several key physical processes: electron losses due to pitch angle scattering from electromagnetic ion cyclotron (EMIC) waves and chorus waves, and electron flux increases from chorus wave-driven acceleration of ${\sim} $ 100–300 keV seed electrons injected from the plasma sheet. We examine a weak geomagnetic storm on 17 April 2021, using observations from various spacecraft, including GOES, Van Allen Probes, ERG/ARASE, MMS, ELFIN, and POES. Despite strong EMIC- and chorus wave-driven electron precipitation in the outer radiation belt, trapped 0.1–1.5 MeV electron fluxes actually increased. We use theoretical estimates of electron quasi-linear diffusion rates by chorus and EMIC waves, based on statistics of their wave power distribution, to examine the role of those waves in the observed relativistic electron flux variations. We find that a significant supply of 100–300 keV electrons by plasma sheet injections together with chorus wave-driven acceleration can overcome the rate of chorus and EMIC wave-driven electron losses through pitch angle scattering toward the loss cone, explaining the observed net increase in electron fluxes. Our study emphasizes the importance of simultaneously taking into account resonant wave-particle interactions and modeled local energy gradients of electron phase space density following injections, to accurately forecast the dynamical evolution of trapped electron fluxes.

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来源期刊
Journal of Geophysical Research: Space Physics
Journal of Geophysical Research: Space Physics Earth and Planetary Sciences-Geophysics
CiteScore
5.30
自引率
35.70%
发文量
570
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