n导体传输线系统非线性负载分析及其在数字电路CAD设计中的应用

S. Castillo, C. Chan, R. Mittra
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引用次数: 2

摘要

建立了以非线性复杂负载为终点的n导体传输线的计算机模拟模型。用模态分析方法描述了输电线上的入射波和反射波。负载被建模为具有电压相关电阻和电源的并联R-C网络。对于每个负载,一个m矩阵微分方程是w,对于未知负载电压,由于某个入射电压。采用一阶有限差分近似对m矩阵方程进行了数值求解。由于数字印刷电路工作的有效频率相对较低,因此在过去计算串扰和脉冲畸变的问题在很大程度上被忽略了。然而,在过去的五年中,数字设备的带宽急剧增加,结果是脉冲的上升时间和下降时间都减少了。与此同时,印刷电路卡上数字器件的密度也在增加。最终的结果是由于串扰和脉冲失真在这些电路中增加了问题。串扰和脉冲畸变会导致电平敏感器件误触发,从而导致电路故障。因此,需要一个计算机辅助设计(CAD)包来分析数字电路中的耦合和脉冲畸变已经变得明显。本文采用准静态模型对m微带线(图1)或埋置m微带线进行了分析。下面的叠加积分是用迭代技术求解给定m多导体印刷电路结构中未知电荷分布p(x)的[ll V (x) = f G (xr,x') p(x')dx' CH2294-7/86/000-0174 $01, 000 (c) 1986 IEEE 174 w这里G (x,x') =该结构的格林函数]。由此得到的电荷分布用于求解输电线路系统的单位长度电容矩阵和电感矩阵。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of N-Conductor Transmission Line Systems with Non-Linear Loads with Application to CAD Design of Digital Circuits
A computer model has been developed f or sim ulating N-conductor transm ission lines term inated w ith non­ linear complex loads. A modal analysis is used to describe incident and reflected waves on the transm ission lines. The loads are modeled as parallel R-C netw orks w ith a vol­ tage dependent resistance and source. For each load a m atrix differential equation is w ritten for the unknown load voltage due to some incident voltage. The m atrix equation is solved num erically using a first order finite difference approximation. The problem o f calculating crosstalk and pulse distortion in digital printed circuits has largely been ignored in the past due to the relatively low effective frequencies at w hich these circuits operate. However, in the past five years, the bandwidth o f digital devices has increased dram atically w ith the result that pulse risetim es and falltim es have decreased. At the same tim e, the density of digital devices on printed circuit cards has risen. The net result has been increasing problems due to crosstalk and pulse distortion in these circuits. The crosstalk and pulse dis­ tortion can cause false triggering o f level sen­ sitive devices w ith the result being a mal­ functioning circuit. Therefore, the need for a Computer Aided Design (CAD) package for analyzing coupling and pulse distortion in digital circuits has become evident. In th is paper, th e m icrostrip (Fig. l ) or buried m icrostrip lines are analyzed using a quasi-static model. The follow ing superposi­ tion integral is solved for the unknown charge distribution p (x ) in a given m ulti­ conductor printed circuit configuration using iterative techniques [ l l V ( x ) = f G (xr,x' ) p(x' )dx' CH2294-7/86/000-0174 $01,00(c )l986 IEEE 174 w here G (x ,x' ) = Green's function for the structure. The resulting charge distribution is used to solve for the per unit length capacitance and inductance m atrices o f the transmission lin e system .
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