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非均匀空间等离子体中电子与哨声波共振相互作用的过渡机制。

Transitional regime of electron resonant interaction with whistler-mode waves in inhomogeneous space plasma.

作者信息

Artemyev A V, Neishtadt A I, Vasiliev A A, Mourenas D

机构信息

Institute of Geophysics and Planetary Physics, University of California, Los Angeles, California, USA.

Space Research Institute RAS, Moscow, Russia.

出版信息

Phys Rev E. 2021 Nov;104(5-2):055203. doi: 10.1103/PhysRevE.104.055203.

Abstract

Resonances with electromagnetic whistler-mode waves are the primary driver for the formation and dynamics of energetic electron fluxes in various space plasma systems, including shock waves and planetary radiation belts. The basic and most elaborated theoretical framework for the description of the integral effect of multiple resonant interactions is the quasilinear theory, which operates through electron diffusion in velocity space. The quasilinear diffusion rate scales linearly with the wave intensity, D_{QL}∼B_{w}^{2}, which should be small enough to satisfy the applicability criteria of this theory. Spacecraft measurements, however, often detect whistle-mode waves sufficiently intense to resonate with electrons nonlinearly. Such nonlinear resonant interactions imply effects of phase trapping and phase bunching, which may quickly change the electron fluxes in a nondiffusive manner. Both regimes of electron resonant interactions (diffusive and nonlinear) are well studied, but there is no theory quantifying the transition between these two regimes. In this paper we describe the integral effect of nonlinear electron interactions with whistler-mode waves in terms of the timescale of electron distribution relaxation, ∼1/D_{NL}. We determine the scaling of D_{NL} with wave intensity B_{w}^{2} and other main wave characteristics, such as wave-packet size. The comparison of D_{QL} and D_{NL} provides the range of wave intensity and wave-packet sizes where the electron distribution evolves at the same rates for the diffusive and nonlinear resonant regimes. The obtained results are discussed in the context of energetic electron dynamics in the Earth's radiation belt.

摘要

与电磁哨声波的共振是包括冲击波和行星辐射带在内的各种空间等离子体系统中高能电子通量形成和动力学的主要驱动因素。用于描述多重共振相互作用积分效应的最基本且最详尽的理论框架是准线性理论,它通过电子在速度空间中的扩散起作用。准线性扩散率与波强度呈线性比例关系,(D_{QL}∼B_{w}^{2}),该比例应足够小以满足该理论的适用性标准。然而,航天器测量经常检测到强度足以与电子发生非线性共振的哨声波。这种非线性共振相互作用意味着相位捕获和相位聚束效应,这可能以非扩散方式迅速改变电子通量。电子共振相互作用的两种模式(扩散和非线性)都已得到充分研究,但尚无理论对这两种模式之间的转变进行量化。在本文中,我们根据电子分布弛豫的时间尺度(∼1/D_{NL})来描述电子与哨声波非线性相互作用的积分效应。我们确定了(D_{NL})与波强度(B_{w}^{2})以及其他主要波特性(如波包大小)的比例关系。(D_{QL})与(D_{NL})的比较给出了波强度和波包大小的范围,在该范围内电子分布在扩散和非线性共振模式下以相同速率演化。我们将所得结果放在地球辐射带中高能电子动力学的背景下进行讨论。

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