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The inherently three-dimensional nature of magnetized plasma turbulence

机译:磁化等离子体湍流的固有三维特性

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It is often asserted or implicitly assumed, without justification, that the results of two-dimensional investigations of plasma turbulence are applicable to the three-dimensional plasma environments of interest. A projection method is applied to derive two scalar equations that govern the nonlinear evolution of the Alfvenic and pseudo-Alfvenic components of ideal incompressible magnetohydrodynamic (MHD) plasma turbulence. The mathematical form of these equations makes clear the inherently three-dimensional nature of plasma turbulence, enabling an analysis of the nonlinear properties of two-dimensional limits often used to study plasma turbulence. In the anisotropic limit, k(perpendicular to) k(parallel to), that naturally arises in magnetized plasma systems, the perpendicular 2D limit retains the dominant nonlinearities that are mediated only by the Alfvenic fluctuations but lacks the wave physics associated with the linear term that is necessary to capture the anisotropic cascade of turbulent energy. In the in-plane 2D limit, the nonlinear energy transfer is controlled instead by the pseudo-Alfven waves, with the Alfven waves relegated to a passive role. In the oblique 2D limit, an unavoidable azimuthal dependence connecting the wavevector components will likely cause artificial azimuthal asymmetries in the resulting turbulent dynamics. Therefore, none of these 2D limits is sufficient to capture fully the rich three-dimensional nonlinear dynamics critical to the evolution of plasma turbulence.
机译:通常在无正当理由的情况下断言或暗含假设,对等离子体湍流进行二维研究的结果适用于所关注的三维等离子体环境。应用投影方法来导出两个标量方程,它们控制理想不可压缩磁流体动力学(MHD)等离子体湍流的Alfvenic和拟Alfvenic分量的非线性演化。这些方程的数学形式使等离子体湍流具有固有的三维性质,从而可以分析经常用于研究等离子体湍流的二维极限的非线性特性。在磁化等离子体系统中自然产生的各向异性极限k(垂直) k(平行)中,垂直2D极限保留了仅由Alfvenic波动介导的主要非线性,但缺乏与波的相关性。捕获湍流能量的各向异性级联所必需的线性项。在平面2D极限中,非线性能量传递由伪Alfven波控制,而Alfven波则被归为被动角色。在倾斜的2D极限中,连接波矢量分量的不可避免的方位角依赖性可能会在最终的湍流动力学中导致人为的方位角不对称。因此,这些2D限制中的任何一个都不足以完全捕获对等离子体湍流的演化至关重要的丰富的三维非线性动力学。

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