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Minimum energy states of the cylindrical plasma pinch in single-fluid and Hall magnetohydrodynamics

机译:单流体和霍尔磁流体力学中圆柱等离子体收缩的最小能量状态

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Relaxed states of a plasma column are found analytically in single-fluid and Hall magnetohydrodynamics (MHD). We perform complete minimization of the energy with constraints imposed by invariants inherent in the corresponding models. It is shown that the relaxed state in Hall MHD is a force-free magnetic field with uniform axial flow and/or rigid azimuthal rotation. In contrast, the relaxed states in single-fluid MHD are more complex due to the coupling between velocity and magnetic field. Cylindrically and helically symmetric relaxed states are considered for both models. Helical states may be time dependent and analogous to helical waves, propagating on a cylindrically symmetric background. Application of our results to reversed-field pinches (RFP) is discussed. The radial profile of the parallel momentum predicted by the single-fluid MHD relaxation theory is shown to be in reasonable agreement with experimental observation from the Madison symmetric torus RFP experiment.
机译:在单流体和霍尔磁流体力学(MHD)中通过分析发现了等离子体柱的松弛状态。我们通过相应模型固有的不变量施加的约束来执行能量的最小化。结果表明,MHD厅的松弛状态是无力磁场,具有均匀的轴向流和/或刚性方位角旋转。相比之下,由于速度和磁场之间的耦合,单流体MHD中的松弛状态更加复杂。两种模型都考虑了圆柱对称和螺旋对称的松弛状态。螺旋状态可能与时间有关,并且类似于在圆柱对称背景上传播的螺旋波。讨论了我们的结果在反向场收缩(RFP)中的应用。单流体MHD弛豫理论预测的平行动量的径向分布与麦迪逊对称环面RFP实验的实验观察结果合理吻合。

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