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Current sheets in planetary magnetospheres

Lev Zelenyi, Helmi Malova, Elena Grigorenko, Victor Popov, Dominique Delcourt2019年Plasma Physics and Controlled FusionIF 2.2出版社

In this article we aim to highlight the problems related to the structure and stability of the comparatively thin current sheets that were relatively recently discovered by space missions in the magnetospheres of the Earth and planets, as well as in the solar wind. These magnetoplasma structures are universal in collisionless cosmic plasmas and can play a key role in the processes of storage and release of energy in the space environment. The development of a self-consistent theory for these sheets in the Earth's magnetosphere, where they were first discovered, has a long and dramatic history. Solution of the problem of the thin current sheet structure and stability become possible in the framework of a kinetic quasi-adiabatic approach required to explain their embedding and metastability properties. It was found that the structure and stability of current structures are completely determined by the nonlinear dynamics of plasma particles. Theoretical models have been developed to predict many properties of these structures and interpret many experimental observations in planetary magnetospheres and the heliosphere.

日本語訳

本稿では、宇宙ミッションによって地球や惑星の磁気圏、ならびに太陽風において比較的最近発見された、比較的薄い電流シートの構造と安定性に関連する問題を浮き彫りにすることを目的とする。これらの磁気プラズマ構造は、無衝突宇宙プラズマにおいて普遍的であり、宇宙環境におけるエネルギーの蓄積と放出の過程において重要な役割を果たし得る。これらのシートが最初に発見された地球磁気圏における、それらのシートの自己無撞着理論の構築には、長く劇的な歴史がある。薄い電流シートの構造と安定性の問題の解決は、それらの埋め込み特性と準安定性を説明するために必要とされる、運動論的準断熱アプローチの枠組みにおいて可能となった。電流構造の構造と安定性は、プラズマ粒子の非線形力学によって完全に決定されることが判明した。これらの構造の多くの特性を予測し、惑星磁気圏および太陽圏における多くの実験的観測を解釈するための理論モデルが構築されてきた。

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