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An efficient implementation of surface impedance boundaryconditions for the finite-difference time-domain method

机译:有限差分时域方法的表面阻抗边界条件的有效实现

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An efficient way to implement the surface impedance boundary conditions (SIBC) for the finite-difference time-domain (FDTD) method is presented in this paper. Surface impedance boundary conditions are first formulated for a lossy dielectric half-space in the frequency domain. The impedance function of a lossy medium is approximated with a series of first-order rational functions. Then, the resulting time-domain convolution integrals are computed using recursive formulas which are obtained by assuming that the fields are piecewise linear in time. Thus, the recursive formulas derived here are second-order accurate. Unlike a previously published method [7] which requires preprocessing to compute the exponential approximation prior to the FDTD simulation, the preprocessing time is eliminated by performing a rational approximation on the normalized frequency-domain impedance. This approximation is independent of material properties, and the results are tabulated for reference. The implementation of the SIBC for a PEC-backed lossy dielectric shell is also introduced
机译:本文提出了一种有效的方法来实现有限差分时域(FDTD)方法的表面阻抗边界条件(SIBC)。首先为频域中的有损介电半空间制定表面阻抗边界条件。有损介质的阻抗函数可以通过一系列一阶有理函数来近似。然后,使用递归公式计算所得的时域卷积积分,这些递归公式是通过假设这些字段在时间上呈分段线性而获得的。因此,此处导出的递归公式是二阶精确的。与先前发布的方法[7]不同,前者需要进行预处理以在FDTD仿真之前计算指数近似值,而通过对归一化的频域阻抗执行有理近似,可以消除预处理时间。该近似值与材料属性无关,并且将结果制成表格以供参考。还介绍了SIBC在PEC支持的有损介电壳中的实现

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