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Relaxation towards localized vorticity states in drift plasma and geostrophic flows

机译:向漂移等离子体和地转流中的局部涡度态弛豫

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摘要

The drift of ions in a magnetized plasma or the height fluctuations of a rotating fluid layer are described by the conservation equation of a potential vorticity. This potential vorticity contains an intrinsic length scale, the hybrid Larmor radius in plasma, and the Rossby length in the quasigeostrophic flow. The influence of this scale in the evolution of a random initial vorticity field is investigated using a thermodynamic approach. In contrast to the perfect fluid case, where the vorticity tends to a well defined stationary state, complete relaxation towards an equilibrium state is not observed in numerical simulations of quasigeostrophic decaying turbulence. The absence of global thermodynamic equilibrium is explained by the relaxation towards states of local equilibrium where the vorticity is concentrated. The interaction between these separated regions is extremely weak. Explicit, axisymmetric, localized solutions of the mean field integrodifferential equation of extremal entropy states are obtained using asymptotic methods. A comparison of the computed solutions with the observed coherent structures shows that they effectively correspond to states in local thermodynamic equilibrium
机译:磁化等离子体中的离子漂移或旋转流体层的高度波动由势涡的守恒方程描述。这种潜在的涡度包括固有长度尺度,等离子中的混合拉莫尔半径和拟地转流中的罗斯比长度。使用热力学方法研究了该尺度对随机初始涡度场演化的影响。与理想流动的情况相反,在理想情况下,涡度趋于良好定义的稳态,在准地转衰减湍流的数值模拟中未观察到向平衡状态的完全松弛。缺乏整体热力学平衡的原因是向涡旋集中的局部平衡状态的松弛。这些分离的区域之间的相互作用非常弱。使用渐近方法获得极值熵态平均场积分微分方程的显式轴对称局部解。计算结果与观察到的相干结构的比较表明,它们有效地对应于局部热力学平衡状态

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