Vlasov和Boltzmann方程直接动力学模拟的网格点要求

W. Chan, I. D. Boyd
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引用次数: 0

摘要

基于vlasov的数值方法,或直接动力学(DK)方法,越来越多地被用于模拟等离子体的动力学,应用范围从天体物理学和核聚变到空间推进和材料处理。这些方法包括对Vlasov或Boltzmann方程中的粒子分布函数进行直接欧拉模拟,该方程描述了该概率密度函数在组态(物理)和速度空间中的动力学输运。DK方法消除了拉格朗日粒子法固有的统计噪声,适用于容忍本底噪声较低的多尺度时变问题。然而,由于其更高的维度,它通常与更大的成本相关联。要想广泛使用DK方法,需要详细了解其网格点要求,以便在不影响求解精度的情况下有效地设计底层网格。我们研究了等离子体羽流膨胀过程的这些要求,例如由激光烧蚀过程产生的等离子体羽流膨胀过程,该过程由于快速电子的双极性加速而产生双麦克斯韦离子分布。除了物理空间中众所周知的德拜长度要求外,我们还研究了速度空间中相应的要求,以及这些要求对感兴趣的量的敏感性,例如物种数量密度、速度和温度,以及它们相关的电势和场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Grid-Point Requirements for Direct Kinetic Simulation of the Vlasov and Boltzmann Equations
Vlasov-based numerical methods, or direct kinetic (DK) methods, are increasingly being used to simulate the dynamics of plasmas in a variety of applications ranging from astrophysics and nuclear fusion to space propulsion and materials processing. These methods involve the direct Eulerian simulation of the particle distribution function in the Vlasov or Boltzmann equation, which describes the kinetic transport of this probability density function in configuration (physical) and velocity spaces. The DK method eliminates statistical noise inherent in Lagrangian particle methods and is preferable for multiscale time-varying problems where the tolerable noise floor is low. However, it is generally associated with larger costs due to its higher dimensionality. Viable widespread usage of the DK method requires a detailed understanding of its grid-point requirements so that the underlying mesh is designed efficiently without compromising on solution accuracy. We examine these requirements for a plasma plume expansion process, such as that produced by a laser ablation procedure, which produces a bi-Maxwellian ion distribution due to ambipolar acceleration by fast electrons. In addition to the commonly known Debye-length requirement in physical space, we investigate the corresponding requirement in velocity space, as well as the sensitivity of these requirements to the quantities of interest, such as the species number densities, velocities, and temperatures, as well as their associated electric potential and field.
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