有耗传输线时域有限差分建模的改进方法

Giulio Antonini, Antonio Orlandi, C. R. Paul
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引用次数: 12

摘要

在最近的一份出版物中,表明高频(当集肤效应良好时)电阻和内部感抗对于矩形截面的导体(如印刷电路板)来说是不相等的,与圆形截面的导体(电线)相比差异高达30%。在求解多导体传输线(MTL)方程时,传统的时域有限差分(FDTD)方法利用导体内部阻抗的表示形式为A+B/spl radic/s/spl rlhar2/A+B/spl radic/j/spl omega/,其中s为拉普拉斯变换变量,/spl omega/为激励的弧度频率。该表达式的有效性假设高频电阻和内部感应电抗相等,但对于矩形截面的导体并非如此。此外,最近已经证明,即使假设高频电阻和内部电感电抗相等,表示A+B/spl径向/s本身也会产生误差。本文的贡献在于提供了一种改进的时域高频损耗建模方法,克服了上述两个不足,适用于MTL方程的时域有限差分解。此外,我们展示了一些典型的串扰计算与新的表示,以确定上述差异是否显著。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An improved method of modeling lossy transmission lines in finite-difference, time-domain analysis
In a recent publication it was shown that the high-frequency (when skin effect is well developed) resistance and internal inductive reactance are not equal for conductors of rectangular cross section such as printed circuit board lands and differ by as much as 30% unlike conductors of circular cross section (wires). The conventional modeling of these losses in the solution of the multiconductor transmission line (MTL) equations via the finite-difference, time-domain (FDTD) method makes use of the representation of this internal impedance of the conductors of the form A+B/spl radic/s/spl rlhar2/A+B/spl radic/j/spl omega/ where s is the Laplace transform variable and /spl omega/ is the radian frequency of excitation. The validity of this representation assumes that the high-frequency resistance and internal inductive reactance are equal which, it turns out, is not the case for conductors of rectangular cross section. Furthermore, it has recently been demonstrated that the representation A+B/spl radic/s in itself produces errors even if the assumption of equality of the high-frequency resistance and internal inductive reactance were true. The contribution of this paper is to provide an improved method for modeling this high-frequency loss in the time domain that overcomes the above two deficiencies and is suitable for the finite-difference, time-domain solution of the MTL equations. In addition, we show some typical crosstalk calculations with the new representation to determine whether the above differences are significant.
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