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Finite frequency zonal flows in multi-scale plasma turbulence including resistive MHD and drift wave instabilities

机译:多尺度等离子体湍流中的有限频率区域流,包括电阻性MHD和漂移波不稳定性

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摘要

The evolution of multi-scale plasma turbulence including resistive MHD and micro-instabilities is studied based on a 5-field slab gyrofluid simulation aiming to understand complex nonlinear interactions and turbulent transport. It is observed that the spatial structure of the mixed-scale electromagnetic turbulence is characterized by a power-law scaling spectrum typical of MHD perturbations, but the spectral amplitude is enhanced by the micro-instability at all scales. A robust oscillatory zonal flow (ZF) with finite frequency is created in slab geometry for the first time due to the multi-scale interaction so that the ion heat transport is not efficiently suppressed. It is identified that the finite frequency ZF results from a net oscillatory electromagnetic torque, which is sustained by micro-instability through multi-scale nonlinear interaction.
机译:基于5场平板旋流模拟,研究了包括电阻MHD和微不稳定性在内的多尺度等离子体湍流的演化,旨在了解复杂的非线性相互作用和湍流输运。可以看到,混合尺度电磁湍流的空间结构的特征是MHD扰动所特有的幂律定标谱,但是在所有尺度上的微不稳定性都增强了谱幅。由于多尺度相互作用,在平板几何中首次创建了具有有限频率的稳健的振荡纬向流(ZF),从而无法有效地抑制离子传热。可以确定的是,有限频率ZF是由净振荡电磁转矩引起的,该净转矩由多尺度非线性相互作用的微不稳定性所维持。

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