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2D simulations of hall-driven magnetic field penetration in electron-magnetohydrodynamics

机译:电子-磁流体动力学中霍尔驱动磁场穿透的二维模拟

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Summary form only given. Magnetic field penetration in electron-magneto-hydrodynamics (EMHD) can be driven by density gradients through the Hall term. Here we describe the effect of electron inertia on simplified one- and two-dimensional models of a magnetic front. Nonlinear effects due to inertia cause the 1D model to develop peaked solitary waves, while in 2D a shear-driven Kelvin-Helholtz (KH) like instability causes the front to break into a series of vortices which propagate into the plasma. The combination of these two effects means that in 2D, Hall driven magnetic field penetration will typically happen in the form of complex vortex-dominated penetration, rather than as a transversely-smooth shock front. Numerical solutions of the 2D KH instability are computed in the limit that the density gradient length scale is much larger than the system size. An initial shock front is found to be unstable, and the development of KH vortices is observed. The propagation speed of the vortices is found to be about a factor of two faster than the propagation speed of the initial shock front.
机译:仅提供摘要表格。电子-磁流体动力学(EMHD)中的磁场穿透可以通过霍尔项的密度梯度来驱动。在这里,我们描述了电子惯性对磁锋的简化一维和二维模型的影响。由于惯性引起的非线性效应使一维模型产生峰值孤立波,而在二维中,剪切驱动的开尔文-赫尔霍尔茨(KH)一样的不稳定性会导致前沿分裂成一系列涡流,这些涡流传播到等离子体中。这两种效应的结合意味着在2D模式下,霍尔驱动的磁场穿透通常会以复杂的旋涡为主的穿透形式发生,而不是以横向平滑的激波锋面形式出现。二维KH不稳定性的数值解是在密度梯度长度尺度远大于系统大小的极限内计算的。最初的激波锋被发现是不稳定的,并且观察到了KH涡旋的发展。发现旋涡的传播速度比初始激波锋的传播速度快大约两倍。

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