Title :
A generalized multi-conductor transmission line (GTML) model and generalized method for the solution of the MTL equations
Author :
Chaoqun Jiao ; Gao, Lei ; Ho, S.L. ; Fu, W.N.
Author_Institution :
Sch. of Electr. Eng., Bejing Jiaotong Univ., Beijing, China
Abstract :
In this paper, a generalized MTL (GMTL) model is developed for modeling of wide frequency transient response on busbars, cables and core-type transformer windings. Different from the traditional MTL model, the equations of the GMTL model are built in the cylindrical coordinate system besides rectangular coordinate system, where the per-unit-radian coefficient matrixes are calculated. Based on further discussion, it is found that GMTL model could be changed to MTL model where all lines have the same length as to the core-type transformer windings. Then, the generalized solution based on Time domain finite element (TDFE) is developed for the above MTL equations. It avoids Gibbs effect of the finite difference time domain (FDTD) method. The numerical results are in agreement on ones calculated by Bergeron´s method and FDTD method.
Keywords :
busbars; finite difference time-domain analysis; frequency response; matrix algebra; multiconductor transmission lines; transformer windings; transient response; Bergeron method; Gibbs effect; MTL equations; busbars; cables; core-type transformer windings; cylindrical coordinate system; finite difference time domain method; generalized multiconductor transmission line model; per-unit-radian coefficient matrixes; rectangular coordinate system; time domain finite element; wide frequency transient response; Cables; Differential equations; Finite difference methods; Finite element methods; Frequency; Multiconductor transmission lines; Transformer cores; Transient response; Transmission line matrix methods; Windings;
Conference_Titel :
Electromagnetic Field Computation (CEFC), 2010 14th Biennial IEEE Conference on
Conference_Location :
Chicago, IL
Print_ISBN :
978-1-4244-7059-4
DOI :
10.1109/CEFC.2010.5481417