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从弱磁流体动力学湍流到强磁流体动力学湍流转变的直接证据。

Direct Evidence of the Transition from Weak to Strong Magnetohydrodynamic Turbulence.

作者信息

Meyrand Romain, Galtier Sébastien, Kiyani Khurom H

机构信息

Space Sciences Laboratory, University of California, Berkeley, California 94720, USA.

LPP, École Polytechnique, F-91128 Palaiseau Cedex, France.

出版信息

Phys Rev Lett. 2016 Mar 11;116(10):105002. doi: 10.1103/PhysRevLett.116.105002. Epub 2016 Mar 9.

DOI:10.1103/PhysRevLett.116.105002
PMID:27015486
Abstract

One of the most important predictions in magnetohydrodynamics is that in the presence of a uniform magnetic field b_{0}e[over ^]{∥} a transition from weak to strong wave turbulence should occur when going from large to small perpendicular scales. This transition is believed to be a universal property of several anisotropic turbulent systems. We present, for the first time, direct evidence of such a transition using a decaying three-dimensional direct numerical simulation of incompressible balanced magnetohydrodynamic turbulence with a grid resolution of 3072^{2}×256. From large to small scales, the change of regime is characterized by (i) a change of slope in the energy spectrum going from approximately -2 to -3/2, (ii) an increase of the ratio between the wave and nonlinear times, with a critical ratio of χ{c}∼1/3, (iii) a modification of the isocontours of energy revealing a transition from a purely perpendicular cascade to a cascade compatible with the critical-balance-type phenomenology, and (iv) an absence followed by a dramatic increase of the communication between Alfvén modes. The changes happen at approximately the same transition scale and can be seen as manifest signatures of the transition from weak to strong wave turbulence. Furthermore, we observe a significant nonlocal three-wave coupling between strongly and weakly nonlinear modes resulting in an inverse transfer of energy from small to large scales.

摘要

磁流体动力学中最重要的预测之一是,在存在均匀磁场(b_{0}\vec{e}{∥})的情况下,当从大的垂直尺度过渡到小的垂直尺度时,应该会发生从弱波湍流到强波湍流的转变。这种转变被认为是几个各向异性湍流系统的普遍特性。我们首次使用分辨率为(3072^{2}×256)的不可压缩平衡磁流体动力学湍流的三维衰减直接数值模拟,给出了这种转变的直接证据。从大尺度到小尺度,状态的变化表现为:(i) 能谱斜率从大约(-2)变为(-3/2);(ii) 波与非线性时间之比增加,临界比为(\chi{c} \sim 1/3);(iii) 能量等值线的改变,揭示了从纯垂直级联到与临界平衡型现象学兼容的级联的转变;(iv) 阿尔文模式之间的耦合先是不存在,然后急剧增加。这些变化大约发生在相同的转变尺度上,可以看作是从弱波湍流到强波湍流转变的明显标志。此外,我们观察到强非线性模式和弱非线性模式之间存在显著的非局部三波耦合,导致能量从小尺度到尺度的反向传输。

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