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A review of weakly conditional stable finite‐difference time‐ domain method for modeling electromagnetic problems with fine structures

机译:精细结构电磁问题的弱条件稳定有限差分时域方法综述

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摘要

The finite-difference time-domain (FDTD) method has been proven to be an effective tool for simulating varieties of electromagnetic interaction problems. However, because the Courant-Friedrich-Levy condition must be satisfied in this method, its maximum time step size is limited by the minimum size of cell used in the computational domain. So, the FDTD method is inefficient to analyze the electromagnetic problem, which has very fine structures. To deal with this problem, the weakly conditional stable (WCS)-FDTD method is developed. In the WCS-FDTD method, the confinement of the fine spatial meshes on the time step size is removed by using the hybrid implicit explicit difference in the directions with fine structures. So, this method has much higher computational efficiency than the FDTD method and is extremely useful for the problems that have fine structures in 2 directions. In this paper, the fundamental theory, including the basic formulations, time stability condition, dispersion error, and absorbing boundary condition of the WCS-FDTD method are presented. Some applications and important developments of this method are provided, and future possibilities of this method are discussed.
机译:有限差分时域(FDTD)方法已被证明是模拟各种电磁相互作用问题的有效工具。但是,由于在此方法中必须满足Courant-Friedrich-Levy条件,因此其最大时间步长受计算域中使用的最小像元大小限制。因此,FDTD方法对电磁问题的分析效率很低,而且结构非常精细。为了解决这个问题,开发了弱条件稳定(WCS)-FDTD方法。在WCS-FDTD方法中,通过在具有精细结构的方向上使用混合隐式显式差异,消除了精细空间网格对时间步长的限制。因此,该方法的计算效率比FDTD方法高得多,对于在两个方向上具有精细结构的问题非常有用。本文介绍了基本理论,包括WCS-FDTD方法的基本公式,时间稳定条件,色散误差和吸收边界条件。提供了该方法的一些应用和重要的发展,并讨论了该方法的未来可能性。

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