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Solution of Large Electromagnetic Problems Made Feasible by HPC - Reducing Execution Times from Months to Hours

机译:HPC可行的大电磁问题的解决方案 - 从几个月到几小时减少执行时间

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There are two major advantages of applying High Performance Computing (HPC) to electromagnetic problems. Firstly, to reduce execution times of a given size of problem from days/hours to minutes/seconds. Secondly, the purpose of this paper, to investigate problems, that were so computationally expense, that they were practically "unsolvable". Pioneering research work in such areas becomes an arduous tedious endeavour. However, HPC now provides the computational power necessary to solve these large electromagnetic problems. Parallel computations of an integral equation technique, in conjunction with a method of moments (MoM) is introduced, in examining electromagnetic illumination of electrically large planar scatterers. To this end, the electromagnetic scattering of an incident wave illuminating an electrically large conducting rectangular plate of infinitesimal thickness is analysed. An integral equation is derived, in terms of the conductivity currents induced on the plate surface, which is solved by employing entire domain Galerkin technique, with Chebyshev type basis functions. The resulting algorithm parallelisation enables extension of the proposed methodology above the resonance region. Numerical results are computed for several scatterer sizes and excitation source types, with impressive near-linear speedups.
机译:将高性能计算(HPC)应用于电磁问题存在两个主要优点。首先,从天/小时到分钟/秒来减少给定大小的问题的执行时间。其次,本文的目的是调查问题,这是如此计算费用,它们实际上是“无法解决的”。这些领域的开拓研究工作​​变得艰巨的繁琐努力。然而,HPC现在提供了解决这些大型电磁问题所需的计算能力。在检查电大平面散射体的电磁照明时,引入了整体方程技术的并行计算。为此,分析了入射波照​​射电气大导电矩形厚度的入射波的电磁散射进行了分析。就板表面引起的电导电流而言,导出积分方程,这通过采用整个域Galerkin技术来解决Chebyshev类型基功能。得到的算法并行化能够扩展谐振区域之上的所提出的方法。计算数值结果,用于几种散射体尺寸和激发源类型,具有令人印象深刻的近线加速。

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