|Table of Contents|

Research on Transmission Crosstalk Method Based onFinite Difference Time Domain Method(PDF)

南京师范大学学报(工程技术版)[ISSN:1006-6977/CN:61-1281/TN]

Issue:
2020年03期
Page:
22-26
Research Field:
电气工程
Publishing date:

Info

Title:
Research on Transmission Crosstalk Method Based onFinite Difference Time Domain Method
Author(s):
Fang Juhao1Chen Jian1Yan Wei1Liu Xingfa2
(1.School of NARI Electrical and Automation,Nanjing Normal University,Nanjing 210023,China)(2.State Key Laboratory of Power Grid Environmental Protection,Wuhan Branch of China Electric Power Research Institute,Wuhan 430074,China)
Keywords:
multiconductor transmission line equationfinite difference time domain methodfield-line couplingfrequency responseplane wave excitation
PACS:
TM72
DOI:
10.3969/j.issn.1672-1292.2020.03.004
Abstract:
Aiming at the high frequency electronic circuit of the crosstalk multiple phenomenon,from the point view of the finite difference time domain(FDTD)method as an effective tool of electromagnetism calculation,this article gives a theoretical derivation of π type Leapfrog central difference scheme. It uses the finite difference time domain method to calculate the theoretical value of the lumped parameter model,distribution parameter model,and field-line coupling model under external excitation condition comparing with the simulation results of the 3d electromagnetic field software CST Studio Suite. The accuracy and reliability of this method are verified.

References:

[1] HONARBAKHSH B,ASADI S. Analysis of multiconductor transmission lines using the CN-FDTD method[J]. IEEE Transactions on Electromagnetic Compatibility,2016,59(1):184-192.
[2]BRANCIK L,SEVCIK B. Fully time-domain simulation of multiconductor transmission line systems:Implicit Wendroff and Euler methods within modified nodal analysis[C]//The Workshop on Nonlinear Dynamics. Slovenia:IEEE,2011:1-6.
[3]AFROOZ K,ABDIPOUR A. Efficient method for time-domain analysis of lossy nonuniform multiconductor transmission line driven by a modulated signal using FDTD technique[J]. IEEE Transactions on Electromagnetic Compatibility,2012,54(2):482-494.
[4]YANG Z,TAN E L. Multiple one-dimensional FDTD method for coupled transmission lines and stability condition[J]. IEEE Microwave and Wireless Components Letters,2016,26(11):864-866.
[5]MORA N,RACHIDI F,PELISSOU P,et al. Cable crosstalk analysis and simulation:a comparison between low frequency circuit approach and transmission line theory[C]//The Workshop on Aerospace Emc. Venice,Italy:IEEE,2012:1-6.
[6]IANCONESCU R,VULFIN V. Analysis of lossy multiconductor transmission lines and application of a crosstalk cancelling algorithm[J]. Iet Microwaves,Antennas and Propagation,2017,11(3):394-401.
[7]HE X,WEN Y,ZHANG J,et al. Analysis of crosstalk between cables on board in high speed EMUs[C]//International Symposium on EMC Technologies. Shanghai,China:IEEE,2016:454-457.
[8]LI G R,WANG L A. Transmission line model for prediction of crosstalk involving three-core twisted cables[C]//International Conference on Electrical and Control Engineering. Wuhan,China:IEEE,2010:3241-3244.
[9]PAUL C R. Solution of the transmission-line equations for three-conductor lines in homogeneous media[J]. IEEE Transactions on Electromagnetic Compatibility,1978,20(1):216-222.
[10]包贵浩,戴飞. 非均匀螺距的双绞线串扰统计特性分析[J]. 北京航空航天大学学报,2014,40(2):193-197.
[11]王天皓,王忠福. 基于混沌多项式展开法的线束串扰统计模型[J]. 吉林大学学报(工学版),2017,47(5):1568-1576.
[12]王天皓. 汽车电磁兼容中线束串扰及其统计特性研究[D]. 长春:吉林大学,2016.
[13]安占扬. 汽车线束串扰及其动态特性的预测研究[D]. 长春:吉林大学,2015.
[14]张俊东. 汽车线束串扰和电磁辐射敏感度的时域分析[D]. 长春:吉林大学,2015.
[15]张昭. 基于“场—线耦合”效应的多导体传输线电磁噪声的预测[D]. 南京:南京航空航天大学,2017.

Memo

Memo:
-
Last Update: 2020-09-15