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An Efficient Parallel Hybrid Method of FEM-MLFMA for Electromagnetic Radiation and Scattering Analysis of Separated Objects

机译:一种有效的平行混合方法,用于分离对象的电磁辐射和散射分析

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摘要

An order to meet the rapidly increasing demand for accurate and efficient analysis of complex radiating or scattering structures in the presence of electrically large objects, a finite element method (FEM)-multilevel fast multipole algorithm (MLFMA) hybrid method that based on the Finite Element-Iterative Integral Equation Evaluation (FE-IIEE) mesh truncation technique is proposed in this paper. The present method makes use of FEM for the regions with small and complex features and MLFMA for the analysis of the electrically large objects, which ensure the accuracy and applicability of the method are better than most commonly adopted FEM-high frequency technique (HFT) hybrid method. The mutual interactions between regions are taken into account in a fully coupled way through iterative near filed computation process. In order to achieve an excellent performance, both algorithms have been implemented together from scratch, being able to run over multi CPU cores. An efficient parallel FEM domain decomposition method (DDM) solver with exploiting geometrical repetitions is included to drastically reduce memory requirements and computational time in the calculation of large array antenna. Also, the parallel MLFMA is adopted to expedite the near-field information exchange between regions. Through numerical example, the effect of distance between regions on the convergence of the proposed hybrid method is studied, and it is shown that the proposed method converge well even if the distance is equal to 0.05.. Through comparisons with an in-house higher order method of moments (HOMoM) code and commercial software FEKO, the accuracy and effectiveness of the implemented parallel hybrid method are validated showing excellent performance.
机译:一种满足快速增加的需求,对电气大物体存在的复杂辐射或散射结构的准确和有效分析,有限元方法(FEM) - 多级快速多极算法(MLFMA)混合方法基于有限元[本文提出了术语积分方程评估(FE-IIEE)网格截断技术。本方法利用具有小和复杂特征和MLFMA的区域的FEM,用于分析电动大物体,这确保了该方法的准确性和适用性优于最常用的FEM高频技术(HFT)混合方法。通过迭代附近提交的计算过程以完全耦合的方式考虑区域之间的相互作用。为了实现优异的性能,两种算法已经从头开始实现,能够通过多CPU核心运行。包括利用几何重复的有效并行FEM域分解方法(DDM)求解器,以在大阵列天线计算中大大降低存储器要求和计算时间。而且,采用平行的MLFMA加快地区之间的近场信息交换。通过数值示例,研究了区域内的距离对所提出的混合方法的收敛性的影响,并且示出了所提出的方法即使距离等于0.05的情况,也会通过与内部更高阶的比较来收敛井时刻(同源)代码和商业软件Feko的方法,所实施的并联混合方法的准确性和有效性验证显示出优异的性能。

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