基于迭代多区域技术的电磁散射

Mohamed Al-Sharkawy, V. Demir, A. Elsherbeni
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引用次数: 9

摘要

本文提出了一种利用有限差分频域迭代法求解大规模电磁结构散射问题的方法。所提出的迭代方法的思想是将一个计算域划分为更小的子区域,并分别求解每个子区域。然后迭代组合子区域解,得到完整域的解。因此,可以大大减少计算时间和内存。这个过程被称为迭代多区域(IMR)技术。研究了不同的增强方法,并介绍了该技术的构建。这些步骤如下:1)发现一种结合了IMR技术和矩量技术的混合技术可以有效地产生准确的结果,并且显著节省计算机内存;2) IMR技术在并行平台上实现,极大地节省了计算时间;3)将多重网格技术和不完全上下预条件与IMR技术相结合,加快了最终解的收敛速度,减少了总计算时间。因此,所提出的迭代技术与增强程序相结合,引入了一种新的方法,以有效和鲁棒的方式解决包括不连接物体在内的大型开边界电磁问题。内容:FDFD方法基础/大规模电磁散射问题的IMR技术:三维案例/大规模电磁散射问题的IMR技术:二维案例/混合FDFD和矩量法的IMR算法/迭代多区域技术的并行化/多网格技术和IMR算法的结合/结语/附录
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electromagnetic Scattering Using the Iterative Multiregion Technique
In this work, an iterative approach using the finite difference frequency domain method is presented to solve the problem of scattering from large-scale electromagnetic structures. The idea of the proposed iterative approach is to divide one computational domain into smaller subregions and solve each subregion separately. Then the subregion solutions are combined iteratively to obtain a solution for the complete domain. As a result, a considerable reduction in the computation time and memory is achieved. This procedure is referred to as the iterative multiregion (IMR) technique. Different enhancement procedures are investigated and introduced toward the construction of this technique. These procedures are the following: 1) a hybrid technique combining the IMR technique and a method of moment technique is found to be efficient in producing accurate results with a remarkable computer memory saving; 2) the IMR technique is implemented on a parallel platform that led to a tremendous computational time saving; 3) together, the multigrid technique and the incomplete lower and upper preconditioner are used with the IMR technique to speed up the convergence rate of the final solution, which reduces the total computational time. Thus, the proposed iterative technique, in conjunction with the enhancement procedures, introduces a novel approach to solving large open-boundary electromagnetic problems including unconnected objects in an efficient and robust way. Contents: Basics of the FDFD Method / IMR Technique for Large-Scale Electromagnetic Scattering Problems: 3D Case / IMR Technique for Large-Scale Electromagnetic Scattering Problems: 2D Case / The IMR Algorithm Using a Hybrid FDFD and Method of Moments Technique / Parallelization of the Iterative Multiregion Technique / Combined Multigrid Technique and IMR Algorithm / Concluding Remarks / Appendices
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