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Numerical implementation and performance of perfectly matched layer boundary condition for waveguide structures

机译:波导结构完美​​匹配层边界条件的数值实现及性能

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摘要

This paper presents some numerical implementation issues and the performance of Berenger's perfectly matched layer (PML) boundary condition for modeling wave propagation in waveguide structures by the finite-difference time-domain (FDTD) method. The relation between the thickness and the conductivity profile of the perfectly matched layer is studied and a guideline for the selection of PML parameters is given. It is shown that the standard Yee's time-marching scheme results in virtually the same numerical solution as the exponential time-marching scheme. Numerical tests are provided for parallel-plate and rectangular waveguides and microstrip lines. It is found that PML is very effective in absorbing TEM and quasi-TEM waves, as well as nonTEM waves somewhat above cutoff frequencies, but ineffective in absorbing evanescent waves and nonTEM waves near cutoff frequencies. The reason for the ineffectiveness of PML for absorbing evanescent waves is explained. Comparative study of PML and Higdon's boundary condition shows that high-order Higdon's boundary condition can reach the same performance of 16-cell PML and can be adjusted for absorbing evanescent waves, but PML is in general more robust to implement. Performance of the boundary condition obtained by combining PML and Higdon's boundary condition is evaluated.
机译:本文提出了一些数值实现问题和贝伦格完美匹配层(PML)边界条件的性能,该条件用于通过有限差分时域(FDTD)方法对波导结构中的波传播进行建模。研究了完美匹配层的厚度与电导率分布之间的关系,并给出了选择PML参数的指南。结果表明,标准Yee的时间步移方案实际上产生了与指数时间步距方案相同的数值解。为平行板和矩形波导以及微带线提供了数值测试。已经发现,PML在吸收TEM和准TEM波以及截止频率以上的非TEM波方面非常有效,但是在吸收截止频率附近的frequencies逝波和非TEM波方面无效。解释了PML吸收e逝波无效的原因。对PML和Higdon边界条件的比较研究表明,高阶Higdon边界条件可以达到16单元PML的相同性能,并且可以进行调整以吸收van逝波,但PML通常更可靠地实现。评估了通过结合PML和Higdon边界条件获得的边界条件的性能。

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