Title :
A hybrid wavelet expansion and boundary element analysis for multiconductor transmission lines in multilayered dielectric media
Author :
Wang, Gaofeng ; Pan, Guangwen ; Gilbert, Bany K.
Author_Institution :
Tanner Res. Inc., Pasadena, CA, USA
fDate :
3/1/1995 12:00:00 AM
Abstract :
In this paper the wavelet expansion method, in conjunction with the boundary element method (BEM), is applied for the evaluation of the capacitance and inductance matrices of multiconductor transmission lines in multilayered dielectric media. The integral equations obtained by using a Green´s function above a ground plane are solved by Galerkin´s method, with the unknown total charge expanded in terms of orthogonal wavelets in L2([0,1]). The difficulty of using wavelets on the real line to expand unknown functions defined in finite intervals is overcome by the utilization of wavelets in L2([0,1]). The adoption of the geometric representation of the BEM converts the two-dimensional problem into a one-dimensional problem, and provides a versatile and accurate treatment of curved conductor surfaces and dielectric interfaces. A sparse matrix equation is developed from the set of integral equations, which is extremely valuable, in particular when a large system of equations must be solved. Finally, we compare our numerical results with previously published data, and demonstrate good agreement between the two sets of results
Keywords :
Green´s function methods; boundary-elements methods; capacitance; inductance; integral equations; sparse matrices; transmission line theory; wavelet transforms; BEM; Galerkin method; Green function; boundary element analysis; capacitance matrices; curved conductor surfaces; geometric representation; hybrid wavelet expansion; inductance matrices; integral equations; multiconductor transmission lines; multilayered dielectric media; one-dimensional problem; orthogonal wavelets; sparse matrix equation; two-dimensional problem; Boundary element methods; Capacitance; Dielectrics; Green´s function methods; Inductance; Integral equations; Moment methods; Multiconductor transmission lines; Transmission line matrix methods; Wavelet analysis;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on