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Advances in time-domain electromagnetic simulation capabilities through the use of overset grids and massively parallel computing.

机译:通过使用超额网格和大规模并行计算,在时域电磁仿真功能方面取得了进步。

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摘要

A new methodology is presented for conducting numerical simulations of electromagnetic scattering and wave-propagation phenomena on massively parallel computing platforms. A process is constructed which is rooted in the Finite-Volume Time-Domain (FVTD) technique to create a simulation capability that is both versatile and practical. In terms of versatility, the method is platform independent, is easily modifiable, and is capable of solving a large number of problems with no alterations. In terms of practicality, the method is sophisticated enough to solve problems of engineering significance and is not limited to mere academic exercises.;Using these new methods and capabilities, results from a large number of wave propagation and scattering simulations are presented. The overset-grid FVTD algorithm is demonstrated to produce results of comparable accuracy to single-grid simulations while simultaneously shortening the grid-generation process and increasing the flexibility and utility of the FVTD technique. Furthermore, the new domain-decomposition approaches developed for overset grids are shown to be capable of producing partitions that are better load balanced and require less interprocessor communication than did previously used overset-grid decomposition methods. This results in parallel efficiencies routinely in excess of 90 percent, even for relatively small problems and large numbers of processors.;In order to achieve this capability, techniques are integrated from several scientific disciplines including computational fluid dynamics, computational electromagnetics, and parallel computing. The end result is the first FVTD solver capable of utilizing the highly flexible overset-gridding process in a distributed-memory computing environment. In the process of creating this capability, work is accomplished to conduct the first study designed to quantify the effects of domain-decomposition dimensionality on the parallel performance of hyperbolic partial differential equations solvers; to develop a new method of partitioning a computational domain comprised of overset grids; and to provide the first detailed assessment of the applicability of overset grids to the field of computational electromagnetics.
机译:提出了一种在大规模并行计算平台上进行电磁散射和波传播现象的数值模拟的新方法。构建了一种基于有限体积时域(FVTD)技术的过程,以创建通用且实用的仿真功能。就通用性而言,该方法是独立于平台的,易于修改,并且能够不更改地解决大量问题。在实用性方面,该方法足够复杂,可以解决工程上的重要问题,而不仅限于学术练习。通过这些新方法和新功能,可以给出大量波传播和散射模拟的结果。证明了过网格FVTD算法可产生与单网格仿真相当的精度结果,同时可缩短网格生成过程并增加FVTD技术的灵活性和实用性。此外,与以前使用的覆盖网格分解方法相比,为覆盖网格开发的新的域分解方法显示出能够产生更好的负载平衡并且需要较少的处理器间通信的分区。即使对于相对较小的问题和大量的处理器,这也通常会导致超过90%的并行效率。为了实现此功能,集成了包括计算流体力学,计算电磁学和并行计算在内的多个科学学科的技术。最终结果是第一款FVTD求解器,该求解器能够在分布式内存计算环境中利用高度灵活的覆盖网格处理程序。在创建此功能的过程中,完成了第一个研究,该研究旨在量化域分解维数对双曲型偏微分方程求解器的并行性能的影响。开发一种划分由过剩网格组成的计算域的新方法;并提供对可覆盖网格在计算电磁学领域的适用性的首次详细评估。

著录项

  • 作者

    Blake, Douglas Clifton.;

  • 作者单位

    Air Force Institute of Technology.;

  • 授予单位 Air Force Institute of Technology.;
  • 学科 Engineering Aerospace.;Computer Science.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 166 p.
  • 总页数 166
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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