基于有限体积方法的细胞内粒子编码kad12d

C. Munz, P. Omnes, R. Schneider, E. Sonnendrucker, E. Stein, U. Voß, T. Westermann
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引用次数: 2

摘要

脉冲功率二极管是在卡尔斯鲁厄Forschungszentrum Karlsruhe开发的,是广泛的实验和数值研究的对象。二极管的电学行为在很大程度上受到带电粒子流的影响,这些粒子流在器件内部形成非中性等离子体。要详细了解由等离子体引起的基本时变现象(例如,不稳定性的起源),需要求解麦克斯韦-洛伦兹方程,该方程具有非常精确的域边界复制品,其中施加了几种边界条件。对这种非线性方程进行数值求解的一种有吸引力的方法是细胞内粒子(PIC)技术。作为使用PIC方法的先决条件,相关的二极管域必须由适当的计算网格覆盖。因此,我们采用基于边界拟合坐标的网格模型,得到数据结构规则的四边形网格区域排列。在二维非矩形四边形网格上,采用有限体积法得到了Maxwell方程组的时域数值解。这些现代FV方案的一个非常有利的特性在于,它们在陡峭梯度下结合了固有的鲁棒性和精确的分辨率。在电磁场中自相容带电粒子模拟的背景下,高分辨率FV Maxwell求解器与PIC方法的耦合是一种新的近似方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
KAD12D-a particle-in-cell code based on finite-volume methods
Pulsed-power diodes have been developed at the Forschungszentrum Karlsruhe and are the objects of extensive experimental as well as numerical investigations. The electrical behavior of the diodes is substantially influenced by a charged particle flow forming a non-neutral plasma inside these devices. A detailed understanding of the fundamental time-dependent phenomena (e.g., the origin of instabilities) caused by this plasma requires the solution of the Maxwell-Lorentz equations for realistic configurations with a very accurate replica of the border of the domain, where several kinds of boundary conditions are imposed. An attractive method to attack this non-linear equations numerically is the particle-in-cell (PIC) technique. As a preliminary to use the PIC approach, the relevant diode domain has to be covered by an appropriate computational mesh. Therefore, we adopt a grid model based on boundary-fitted coordinates resulting in a quadrilateral mesh zone arrangement with regular data structure. The numerical solution of the Maxwell equations in time domain is obtained by using a finite-volume (FV) approach on a non-rectangular quadrilateral mesh in two space dimensions. A very favorable property of these modern FV schemes consists in the fact that they combine inherent robustness at steep gradients with accurate resolution. In the context of self-consistent charged particle simulation in electromagnetic fields the coupling of a high-resolution FV Maxwell solver with the PIC method is a new way of approximation.
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