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First-order finite-Larmor-radius fluid modeling of tearing and relaxation in a plasma pinch

机译:等离子体收缩中撕裂和松弛的一阶有限Larmor半径流体模型

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Drift and Hall effects on magnetic tearing, island evolution, and relaxation in pinch configurations are investigated using a non-reduced first-order finite-Larmor-radius (FLR) fluid model with the nonideal magnetohydrodynamics (MHD) with rotation, open discussion (NIMROD) code [C.R. Sovinec and J. R. King, J. Comput. Phys. 229, 5803 (2010)]. An unexpected result with a uniform pressure profile is a drift effect that reduces the growth rate when the ion sound gyroradius (ρ _s) is smaller than the tearing-layer width. This drift is present only with warm-ion FLR modeling, and analytics show that it arises from ? B and poloidal curvature represented in the Braginskii gyroviscous stress. Nonlinear single-helicity computations with experimentally relevant ρ _s values show that the warm-ion gyroviscous effects reduce saturated-island widths. Computations with multiple nonlinearly interacting tearing fluctuations find that m = 1 core-resonant-fluctuation amplitudes are reduced by a factor of two relative to single-fluid modeling by the warm-ion effects. These reduced core-resonant-fluctuation amplitudes compare favorably to edge coil measurements in the Madison Symmetric Torus (MST) reversed-field pinch [R. N. Dexter, Fusion Technol. 19, 131 (1991)]. The computations demonstrate that fluctuations induce both MHD- and Hall-dynamo emfs during relaxation events. The presence of a Hall-dynamo emf implies a fluctuation-induced Maxwell stress, and the simulation results show net transport of parallel momentum. The computed magnitude of force densities from the Maxwell and competing Reynolds stresses, and changes in the parallel flow profile, are qualitatively and semi-quantitatively similar to measurements during relaxation in MST.
机译:使用具有非理想磁流体动力学(MHD)且具有旋转,开放讨论(NIMROD)的非简化一阶有限拉莫尔-半径(FLR)流体模型,研究了夹挤配置中的磁撕裂,孤岛演化和松弛对漂移和霍尔效应的影响)代码[CR Sovinec和J.R. King,J.Comput。物理229,5803(2010)。具有均匀压力分布的意外结果是漂移效应,当离子声回旋半径(ρ_s)小于撕裂层宽度时,漂移效应会降低增长率。这种漂移仅在热离子FLR建模中存在,并且分析表明它是由?引起的。 B和极向曲率表示为Braginskii gyroviscous应力。具有实验相关的ρ_s值的非线性单螺旋计算表明,热离子陀螺粘性效应减小了饱和岛的宽度。具有多个非线性相互作用的撕裂波动的计算发现,相对于单流体建模,通过热离子效应,m = 1的核心共振波动幅度降低了两倍。与在Madison对称圆环(MST)反向场夹点中的边缘线圈测量相比,这些减小的芯共振波动幅度具有优势。 N. Dexter,融合技术。 19,131(1991)]。计算结果表明,波动在放松事件期间会同时诱发MHD和Hall-dynamo电动势。霍尔电动势的存在暗示了由波动引起的麦克斯韦应力,并且仿真结果显示平行动量的净传输。从麦克斯韦应力和竞争雷诺应力计算得出的力密度大小以及平行流动剖面的变化在质量和半定量方面与MST弛豫期间的测量相似。

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