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Numerical stability and error analysis of transformation optics for electromagnetic simulation in time-domain

机译:时域电磁仿真转换光学系统的数值稳定性和误差分析

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摘要

Applying transformation optics (TO) for converting non-uniform physical grids into uniform numerical grids with an additional derived anisotropic medium and an analysis of numerical stability and error in an electromagnetic finite-difference time-domain (FDTD) simulation are presented. Traditionally, the maximum time-step is limited by the smallest cell size. However, due to the invariance of time, when smaller physical grids are converted into a numerical system, the phase velocity of light can be greater than that in free space. The conventional Fourier analysis of numerical dispersion to seek numerical stability is no longer applied, but rather there is further consideration of the properties of the derived medium. Thus, we derive the numerical dispersion relation to seek a more general numerical stability condition for a converted numerical system. It is found to be consistent with that of a non-uniform physical system. Also, an error analysis is performed by comparing the differences in the electric fields simulated in the converted numerical system with those in the uniform physical system. We show that they are almost of the same order; that is, there is almost no extra error induced when applying the proposed numerical simulation method.
机译:提出了利用转换光学(TO)将具有附加导出各向异性介质的非均匀物理网格转换为均匀数值网格的方法,并给出了电磁时域有限差分(FDTD)仿真中数值稳定性和误差的分析。传统上,最大时间步长受最小单元大小的限制。但是,由于时间的不变性,当将较小的物理网格转换为数值系统时,光的相速度可能会大于自由空间中的相速度。不再应用寻求数值稳定性的常规数值扩散傅里叶分析,而是进一步考虑了派生介质的特性。因此,我们推导了数值色散关系,以寻求转换后的数值系统的更一般的数值稳定性条件。发现它与非均匀物理系统的一致。此外,通过将转换后的数值系统中模拟的电场与均匀物理系统中的电场进行比较,可以进行误差分析。我们证明它们几乎相同。也就是说,应用所提出的数值模拟方法时几乎不会产生额外的误差。

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