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首页> 外文期刊>Plasma physics and controlled fusion >Kinetic, two-fluid and MHD simulations of plasmas
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Kinetic, two-fluid and MHD simulations of plasmas

机译:等离子体的动力学,双流体和MHD模拟

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摘要

The kinetic and extended magnetohydrodynamic (MHD) simulation methods are discussed in the context of their ability to simulate macroscopic plasma evolution on an MHD evolution time scale with microturbulence in toroidal magnetized plasmas. To properly model the evolution of neoclassical equilibrium, it is important to use full-f gyrokinetic calculation with sufficient accuracy for perpendicular viscosity. Similarly in MHD problems, a good accuracy in constructing the closures, in particular for the viscosity stress elements, is required. Although evidence of spontaneous reduction of transport with the consequent rapid steepening of the pressure gradient is found in simulations with full-f 5D gyrokinetic and 3D Braginskii fluid equations, no simulation of the transport barrier formation in agreement with experimental observations has yet been presented. For a comprehensive description of edge plasma dynamics, including L - H transition, pedestal formation, and ELM oscillation problems, full-f 5D gyrokinetic simulation is a necessity, at least in hybrid with 3D MHD. With present-day computers, the global transport time scale can be reached with full-f gyrokinetic simulations in small tokamaks (rho(*)<= 50 - 100), while fluid simulation has to be used for MHD evolution time scale in medium-sized tokamaks.
机译:讨论了动力学和扩展磁流体动力学(MHD)模拟方法的能力,这些方法能够在MHD演化时间尺度上模拟宏观等离子体演化,并在环形磁化等离子体中具有微湍流。为了正确地模拟新古典主义平衡的演变,重要的是要使用充分的陀螺动力学计算来计算垂直粘度。类似地,在MHD问题中,在构造封闭件时,特别是对于粘度应力元件,需要良好的精度。尽管在使用全f 5D陀螺动力学和3D Braginskii流体方程的模拟中发现了运输自发减少并因此使压力梯度快速变陡的证据,但仍未提出与实验观察一致的运输障碍形成的模拟。为了全面描述边缘等离子体动力学,包括L-H跃迁,基座形成和ELM振荡问题,至少在与3D MHD混合使用时,全f 5D陀螺动力学仿真是必要的。借助当今的计算机,可以在小型托卡马克(rho(*)<= 50-100)中进行全功能陀螺动力学模拟,从而达到全球运输时间尺度,而在中等密度条件下,流体模拟必须用于MHD演化时间尺度。大小的托卡马克。

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