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首页> 外文期刊>Physics of plasmas >Relaxation model for extended magnetohydrodynamics: Comparison to magnetohydrodynamics for dense Z-pinches
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Relaxation model for extended magnetohydrodynamics: Comparison to magnetohydrodynamics for dense Z-pinches

机译:扩展的磁流体动力学的松弛模型:与致密Z夹的磁流体动力学的比较

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摘要

It is shown that the two-fluid model under a generalized Ohm's law formulation and the resistive magnetohydrodynamics (MHD) can both be described as relaxation systems. In the relaxation model, the under-resolved stiff source terms constrain the dynamics of a set of hyperbolic equations to give the correct asymptotic solution. When applied to the collisional two-fluid model, the relaxation of fast time scales associated with displacement current and finite electron mass allows for a natural transition from a system where Ohm's law determines the current density to a system where Ohm's law determines the electric field. This result is used to derive novel algorithms, which allow for multiscale simulation of low and high frequency extended-MHD physics. This relaxation formulation offers an efficient way to implicitly advance the Hall term and naturally simulate a plasma-vacuum interface without invoking phenomenological models. The relaxation model is implemented as an extended-MHD code, which is used to analyze pulsed power loads such as wire arrays and ablating foils. Two-dimensional simulations of pulsed power loads are compared for extended-MHD and MHD. For these simulations, it is also shown that the relaxation model properly recovers the resistive-MHD limit.
机译:结果表明,在广义欧姆定律下的双流体模型和电阻磁流体动力学(MHD)都可以描述为弛豫系统。在松弛模型中,欠解析的刚性源项约束一组双曲方程的动力学,以给出正确的渐近解。当将其应用于碰撞双流体模型时,与位移电流和有限电子质量相关的快速时间标度的松弛允许从欧姆定律确定电流密度的系统自然过渡到欧姆定律确定电场的系统。该结果用于推导新颖的算法,从而可以对低频和高频扩展MHD物理进行多尺度仿真。这种弛豫公式提供了一种有效的方式,可以隐式地推进霍尔项并自然地模拟血浆-真空界面,而无需调用现象学模型。松弛模型被实现为扩展的MHD代码,用于分析脉冲功率负载,例如线阵列和烧蚀箔片。比较了扩展MHD和MHD的脉冲功率负载的二维仿真。对于这些仿真,还表明松弛模型可以正确恢复电阻MHD极限。

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