Application of the enlarged cell method (ECM) to EMI/EMC problems

Tian Xiao, Q. Liu, Jiangqi He
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Abstract

Conductors play an important role in the EMI/EMC problem. However, the conventional finite-difference time-domain (FDTD) method is known to produce significant staircasing errors when applied to conductors. In the past few years, many researchers have been using conformal FDTD methods to reduce this staircasing error. As a side effect, however, the time step size in these conformal FDTD (CFDTD) methods often becomes more restrictive because of the reduced effective grid size near the conductor boundary. An enlarged cell method is applied to solve EMI/EMC problems. We show that the ECM is highly accurate compared to the conventional FDTD method, and is three times faster than the conformal FDTD method because the time step size in ECM remains the same as in the FDTD method. Large-scale EMI/EMC problems have been solved with the ECM on a PC.
放大单元法(ECM)在EMI/EMC问题中的应用
导体在电磁干扰/电磁兼容问题中起着重要的作用。然而,已知传统的时域有限差分(FDTD)方法在用于导体时产生显著的阶梯误差。在过去的几年里,许多研究者一直在使用共形时域有限差分方法来减小这种阶梯误差。然而,这些共形时域有限差分(CFDTD)方法的副作用是,由于导体边界附近的有效网格尺寸减小,时间步长往往变得更加受限。采用放大单元法求解电磁干扰/电磁兼容问题。我们发现,与传统的FDTD方法相比,ECM具有很高的精度,并且比保形FDTD方法快三倍,因为ECM中的时间步长与FDTD方法保持相同。在微机上解决了大规模的电磁干扰/电磁兼容问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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