Title :
Derivation of equivalent circuits for multilayer printed circuit board discontinuities using full wave models
Author :
Pillai, Edward ; Wiesbeck, Werner
Author_Institution :
Inst. fuer Hoechstfrequenztechnik und Elektronik, Karlsruhe Univ., Germany
fDate :
9/1/1994 12:00:00 AM
Abstract :
Recent advances in increasing transmission rates for digital communication systems necessitates special attention during printed circuit board (PCB) design. This contribution provides a methodology for developing appropriate simple equivalent circuits to describe the discontinuities in multilayer boards. The effects of inhomogeneous substrate material, via holes, crossovers and coupled lines are examined. The incorporation of substrate loss in the difference equation system is additionally treated. The equivalent circuits are intended for system simulation, where minimal computational overhead is desired. The Finite Difference Frequency Domain (FDFD) and Finite Difference Time Domain (FDTD) methods provide in conjunction the basis for calculating the scattering parameters [S] and fields of the discontinuities, from which equivalent circuits are derived. Excellent S parameter agreement between field computation and equivalent circuit is achieved up to 20 GHz for all structures considered. Measurements are indicated where appropriate
Keywords :
S-parameters; circuit analysis computing; circuit layout; equivalent circuits; finite difference methods; finite difference time-domain analysis; losses; microstrip lines; printed circuit design; transmission line theory; 20 GHz; FDFD methods; FDTD methods; S-parameter; coupled lines; crossovers; difference equation system; equivalent circuits; field computation; finite difference frequency domain methods; finite difference time domain methods; full wave models; inhomogeneous substrate material; multilayer PCB discontinuities; printed circuit board; scattering parameters; substrate loss; system simulation; via holes; Computational modeling; Coupling circuits; Difference equations; Digital communication; Equivalent circuits; Finite difference methods; Nonhomogeneous media; Printed circuits; Scattering parameters; Transmission line discontinuities;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on