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位型不稳定性在磁流体力学湍流中的作用。

Role of the Plasmoid Instability in Magnetohydrodynamic Turbulence.

机构信息

Department of Astrophysical Sciences, Princeton University, Princeton, New Jersey 08544, USA.

Princeton Plasma Physics Laboratory, Princeton University, Princeton, New Jersey 08540, USA.

出版信息

Phys Rev Lett. 2018 Oct 19;121(16):165101. doi: 10.1103/PhysRevLett.121.165101.

Abstract

The plasmoid instability in evolving current sheets has been widely studied due to its effects on the disruption of current sheets, the formation of plasmoids, and the resultant fast magnetic reconnection. In this Letter, we study the role of the plasmoid instability in two-dimensional magnetohydrodynamic (MHD) turbulence by means of high-resolution direct numerical simulations. At a sufficiently large magnetic Reynolds number (R_{m}=10^{6}), the combined effects of dynamic alignment and turbulent intermittency lead to a copious formation of plasmoids in a multitude of intense current sheets. The disruption of current sheet structures facilitates the energy cascade towards small scales, leading to the breaking and steepening of the energy spectrum. In the plasmoid-mediated regime, the energy spectrum displays a scaling that is close to the spectral index -2.2 as proposed by recent analytic theories. We also demonstrate that the scale-dependent dynamic alignment exists in 2D MHD turbulence and the corresponding slope of the alignment angle is close to 0.25.

摘要

由于其对电流片破坏、等离子体形成以及由此产生的快速磁重联的影响,演化电流片中的等离子体不稳定性得到了广泛的研究。在这篇快报中,我们通过高分辨率直接数值模拟研究了等离子体不稳定性在二维磁流体力学(MHD)湍流中的作用。在足够大的磁雷诺数(Rm=10^6)下,动态对准和湍流间歇性的综合作用导致大量等离子体在许多强电流片中形成。电流片结构的破坏有利于能量向小尺度级联,导致能谱的破裂和陡化。在等离子体介导的区域,能谱显示出与最近的解析理论提出的谱指数-2.2 非常接近的标度。我们还证明了二维 MHD 湍流中存在与尺度相关的动态对准,并且对准角的相应斜率接近于 0.25。

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