Numerical simulation of plasmas on an unstructured grid

A. Drobot, A. Friedman, M. Fritts, I. Lottati, D. J. Nielsen
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引用次数: 1

Abstract

Summary form only. The use of unstructured grids provides some inherent advantages in the accurate simulation of plasma problems that involve complex configurations and where the treatment of complicated boundaries is important. The use of a triangular grid in two dimensions and of a tetrahedral grid with arbitrary connectivity in three dimensions allows a straightforward representation of complex geometries and allows the resolution of the mesh to vary according to the requirements of a problem. The authors have constructed a very simple and efficient data structure to represent unstructured grids for geometries with arbitrarily shaped boundaries. The data contains information about the location of vertices, edges, sides, and cells and permits with one degree of indirectness the implementation of algorithms for field solvers and for particle orbit integration. The numerical algorithms that have been constructed include a potential solver, an electromagnetic solver for both the time and frequency domain, and a particle-in-cell simulation. The efficiency and vectorization of the basic code functions are retained and yield timing results comparable with structured mesh codes.<>
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非结构网格上等离子体的数值模拟
只有摘要形式。使用非结构化网格在精确模拟涉及复杂结构和复杂边界处理的等离子体问题方面提供了一些固有的优势。在二维中使用三角形网格,在三维中使用具有任意连接的四面体网格,可以直接表示复杂的几何形状,并允许网格的分辨率根据问题的要求而变化。作者构建了一个非常简单和有效的数据结构来表示具有任意形状边界的几何图形的非结构化网格。这些数据包含有关顶点、边、边和单元的位置信息,并允许在一定程度上间接实现场求解器和粒子轨道积分算法。已经构建的数值算法包括一个势求解器,一个时域和频域的电磁求解器,以及一个细胞内粒子模拟。保留了基本代码函数的效率和向量化,并产生了与结构化网格代码相当的时序结果。
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