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Kinetic theory of geodesic acoustic modes in toroidal plasmas: a brief review

机译:环形等离子体测地声学模式的动力学理论:简要介绍

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摘要

Geodesic acoustic modes (GAM) are oscillating zonal structures unique to toroidal plasmas, and have been extensively studied in the past decades due to their potential capabilities of regulating microscopic turbulences and associated anomalous transport. This article reviews linear and nonlinear theories of GAM; with emphases on kinetic treatment, system nonuniformity and realistic magnetic geometry, in order to reflect the realistic experimental conditions. Specifically, in the linear physics, the resonant wave-particle interactions are discussed, with the application to resonant excitation by energetic particles (EPs). The theory of EP-induced GAM (EGAM) is applied to realistic devices for the interpretation of experimental observations, and global effects due to coupling to GAM continuum are also discussed. Meanwhile, in the nonlinear physics, the spontaneous GAM excitation by microscale turbulences is reviewed, including the effects of various system nonuniformities. A unified theoretical framework of GAM/EGAM is then constructed based on our present understandings. The first-principle-based GAM/EGAM theories reviewed here, thus, provide the tools needed for the understanding and interpretation of experimental/numerical results.
机译:测地声学模式(GAM)是对环形等离子体独特的振荡区域结构,并且由于它们的潜在能力来调节微观湍流和相关的异常运输,因此在过去几十年中被广泛研究。本文介绍了GAM的线性和非线性理论;重点是动力学处理,系统不均匀性和现实磁几何形状,以反映现实的实验条件。具体地,在线性物理学中,讨论共振波粒子相互作用,施用通过能量粒子(EPS)共振激发。 EP诱导的GAM(EGAM)的理论应用于用于解释实验观察的现实设备,并且还讨论了由于耦合到GAM连续体的全球效应。同时,在非线性物理学中,综述了微观湍流的自发游戏激发,包括各种系统不均匀的效果。然后根据我们现在的理解构建了GAM / EGAM的统一理论框架。因此,在此评论的基于第一原理的GAM / EGAM理论提供了理解和解释实验/数值结果所需的工具。

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