FDTD simulations on disjoint domains with the use of discrete Green's function diakoptics

T. Stefański, T. Dziubak
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Abstract

A discrete Green's function (DGF) approach to couple disjoint domains in the finite-difference time-domain (FDTD) grid is developed. In this method, total-field/scattered-field (TFSF) FDTD domains are associated with simulated objects whereas the interaction between them is modeled with the use of the DGF propagator. Hence, source and scatterer are simulated in separate domains and updating of vacuum cells, being of little interest, can be avoided. The simulation scenarios consisting of (i) disjoint domains separated by a spatial distance and (ii) a sub-domain embedded in the main grid are considered. In the developed method, the field radiated by an FDTD domain is computed as a convolution of DGF with equivalent current sources measured over two displaced Huygens surfaces in the scattered-field zone. Therefore, the computed electromagnetic field is compatible with the FDTD grid and can be applied as an incident wave in a coupled TFSF domain. The developed method of diakoptics can be generalized for simulations of FDTD domains requiring nonlinear or multiphysics modeling with interaction between them computed with the use of DGF propagators.
用离散格林函数对光进行不相交域的时域有限差分模拟
提出了一种求解时域有限差分网格中不相交域耦合的离散格林函数(DGF)方法。在这种方法中,全场/散射场(tsf) FDTD域与模拟对象相关联,而它们之间的相互作用是使用DGF传播器建模的。因此,源和散射体在不同的域中进行模拟,并且可以避免真空单元的更新,这是不太感兴趣的。考虑了由(i)由空间距离分隔的不相交域和(ii)嵌入主网格的子域组成的仿真场景。在所开发的方法中,时域有限差分域辐射的场被计算为在散射场区两个位移惠更斯表面上测量的等效电流源的DGF的卷积。因此,计算得到的电磁场与FDTD网格兼容,可以作为入射波应用于耦合tsf域中。所开发的双光学方法可以推广到需要非线性或多物理场建模的时域有限差分域的模拟,并使用DGF传播器计算它们之间的相互作用。
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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