Whistler waves induced by relativistic electrons and limiting trapped electrons flux

E. Le Bel, F. Simonet, R. Ciurea-Borcia, G. Matthieussent, J. Solomon
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引用次数: 0

Abstract

Energetic electrons are injected in the magnetosphere during solar eruptions or by artificial means, increasing the electron fluxes in Van Allen belts. The presence of relativistic electrons in the magnetosphere induces whistler wave excitation due to various kinds of instabilities, such as temperature anisotropy, loss cone or beam type instability. Such studies on whistler wave excitation induced by energetic particles in the magnetospheric plasma are generally carried out for nonrelativistic electrons (CRRES, ARAKS, ECHO, SEPAC, Spacelab missions...). In this paper, first results that we have obtained concerning the whistler mode excitation for parallel and oblique propagation, and for relativistic electrons, are presented both for temperature anisotropy and beam type instabilities. The theoretical formalism that we have used to derive the wave dispersion equation is first described.
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由相对论性电子和限制捕获电子通量引起的惠斯勒波
高能电子在太阳爆发期间或通过人工手段注入磁层,增加范艾伦带的电子通量。磁层中相对论性电子的存在由于各种不稳定性,如温度各向异性、损耗锥或束型不稳定性而引起哨声波激发。磁层等离子体中高能粒子诱导的哨声波激发的研究通常是针对非相对论性电子(CRRES, ARAKS, ECHO, SEPAC, Spacelab任务等)进行的。本文首先给出了平行和斜向传播以及相对论性电子的哨声模激发的温度各向异性和束型不稳定性的结果。首先描述了我们用来推导波色散方程的理论形式。
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