DocumentCode :
1207636
Title :
Analysis of the helical twisted-wire pair running above ground: transfer function evaluation
Author :
Faria, J. A Brandão ; Neves, M. V Guerreiro das
Author_Institution :
Centro de Electrotecnia Teorica e Medidas Electricas, Inst. Superior Tecnico, Lisbon, Portugal
Volume :
45
Issue :
2
fYear :
2003
fDate :
5/1/2003 12:00:00 AM
Firstpage :
449
Lastpage :
453
Abstract :
This paper deals with the analysis of an internally excited three-conductor nonuniform transmission-line system comprising a twisted wire pair (TWP) running above a conducting plane. Research is conducted aimed at the analysis and characterization of the propagation properties of a helical-type TWP system with lossy conductors. Numerical simulation results regarding the attenuation and phase-velocity characteristics of this transmission-line system are obtained by using a TWP model consisting of a cascade of small incremental parallel segments subjected to continuous rotation. Special attention is paid to the derivation and analysis of the frequency-domain voltage transfer function describing the behavior of the TWP structure with a number N of twists. Time-domain results concerning the system response to a pulse train excitation are also obtained by making use of the information conveyed by the transfer function. Both frequency- and time-domain simulation results reported here show that the periodicity arising from wire twisting may dramatically modify the transmission-line system propagation properties as compared to those concerning the untwisted case.
Keywords :
frequency-domain analysis; multiconductor transmission lines; periodic structures; time-domain analysis; transfer functions; transmission line matrix methods; twisted pair cables; TLM method; attenuation; conducting plane; frequency-domain simulation; frequency-domain voltage transfer function; helical twisted wire pair; internally excited transmission-line system; lossy conductors; nonuniform transmission-line system; numerical simulation; periodic structures; periodicity; phase-velocity characteristics; propagation properties; pulse train excitation; three-conductor transmission-line system; time-domain simulation; transfer function evaluation; transmission-line matrix methods; Attenuation; Conductors; Frequency domain analysis; Numerical simulation; Propagation losses; Time domain analysis; Transfer functions; Transmission lines; Voltage; Wire;
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2003.811316
Filename :
1200891
Link To Document :
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