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离子到磁流体动力学尺度横向速度剪切层中开尔文-亥姆霍兹不稳定性的动力学效应:粒子模拟

Kinetic effects on the Kelvin-Helmholtz instability in ion-to-magnetohydrodynamic scale transverse velocity shear layers: Particle simulations.

作者信息

Nakamura T K M, Hasegawa H, Shinohara I

机构信息

Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency, Kanagawa 229-8510, Japan.

出版信息

Phys Plasmas. 2010 Apr;17(4). doi: 10.1063/1.3385445. Epub 2010 Apr 30.

Abstract

Ion-to-magnetohydrodynamic scale physics of the transverse velocity shear layer and associated Kelvin-Helmholtz instability (KHI) in a homogeneous, collisionless plasma are investigated by means of full particle simulations. The shear layer is broadened to reach a kinetic equilibrium when its initial thickness is close to the gyrodiameter of ions crossing the layer, namely, of ion-kinetic scale. The broadened thickness is larger in B⋅Ω<0 case than in B⋅Ω>0 case, where Ω is the vorticity at the layer. This is because the convective electric field, which points out of (into) the layer for B⋅Ω<0 (B⋅Ω>0), extends (reduces) the gyrodiameters. Since the kinetic equilibrium is established before the KHI onset, the KHI growth rate depends on the broadened thickness. In the saturation phase of the KHI, the ion vortex flow is strengthened (weakened) for B⋅Ω<0 (B⋅Ω>0), due to ion centrifugal drift along the rotational plasma flow. In ion inertial scale vortices, this drift effect is crucial in altering the ion vortex size. These results indicate that the KHI at Mercury-like ion-scale magnetospheric boundaries could show clear dawn-dusk asymmetries in both its linear and nonlinear growth.

摘要

通过全粒子模拟研究了均匀无碰撞等离子体中横向速度剪切层的离子到磁流体动力学尺度物理以及相关的开尔文-亥姆霍兹不稳定性(KHI)。当剪切层的初始厚度接近穿过该层的离子的回旋直径,即离子动力学尺度时,剪切层会变宽以达到动力学平衡。在B⋅Ω<0的情况下,变宽后的厚度大于B⋅Ω>0的情况,其中Ω是层处的涡度。这是因为对于B⋅Ω<0(B⋅Ω>0),指向层外(内)的对流电场会扩展(减小)回旋直径。由于在KHI开始之前就建立了动力学平衡,所以KHI增长率取决于变宽后的厚度。在KHI的饱和阶段,由于离子沿旋转等离子体流的离心漂移,对于B⋅Ω<0(B⋅Ω>0),离子涡旋流会增强(减弱)。在离子惯性尺度涡旋中,这种漂移效应对于改变离子涡旋大小至关重要。这些结果表明,在类似水星离子尺度的磁层边界处的KHI在其线性和非线性增长中都可能表现出明显的晨昏不对称性。

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