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Visco-Resistive Dissipation in Transient Reconnection Driven by the Orszag-Tang Vortex

机译:Orszag-Tang涡流驱动的瞬态重新连接中的粘滞耗散

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摘要

Viscous effects are expected to significantly contribute to reconnective energy release mechanisms in solar flares. While simple scaling arguments based on head-on reconnection suggest that viscous dissipation may dominate resistive dissipation, it is not clear whether these findings can be applied in more general merging situations. Here we perform side-by-side planar reconnection simulations driven by the Orszag-Tang vortex, for both classical and Braginskii forms of the viscosity. This formulation has the advantage of providing an autonomous MHD system that develops strong current layers, sustained by large-scale vortical shearing flows. The dissipation rates are shown to follow analytically based scaling laws, which suggest that viscous losses generated from large-scale non-uniform velocity fields are likely to dominate resistive losses in current-sheet reconnection solutions.
机译:粘滞效应有望显着促进太阳耀斑中的再连接能量释放机制。虽然基于正面重新连接的简单缩放比例参数表明粘性耗散可能会主导电阻性耗散,但尚不清楚这些发现是否可以应用于更一般的合并情况。在这里,我们对Orszag-Tang涡流进行了经典和Braginskii形式的粘度并排平面重新连接仿真。这种配方的优势在于提供了一个自主的MHD系统,该系统可产生强大的电流层,并通过大规模的涡旋剪切流维持其流动。耗散率显示出遵循基于解析的定标律,这表明由大规模非均匀速度场产生的粘性损耗很可能在电流表重新连接解决方​​案中占主导地位。

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