DocumentCode :
873696
Title :
Multiple scattering among vias in planar waveguides using preconditioned SMCG method
Author :
Huang, Chung-Chi ; Tsang, Leung ; Chan, Chi Hou ; Ding, Kung-Hau
Author_Institution :
Dept. of Electr. Eng., Univ. of Washington, Seattle, WA, USA
Volume :
52
Issue :
1
fYear :
2004
Firstpage :
20
Lastpage :
28
Abstract :
Full-wave modeling for cylindrical vias in planar waveguides is formulated using Foldy-Lax multiple scattering equations. Recently, a sparse-matrix canonical-grid method based on fast Fourier transform and an iterative algorithm was proposed to solve a large-scale via problem. In this paper, we further improve computational efficiency by a preconditioning scheme based on the dominant information contained in the near field. We also discuss two methods-the sparse-matrix LU decomposition and sparse matrix iterative methods-for constructing the preconditioner, providing the tradeoffs between CPU time and memory. Results show an order of magnitude improvement over the nonpreconditioned case on the convergence rate. As an example, for 20 000 vias simulation, the solution time (per excitation and per frequency) is approximately 13 s per iteration, and 75 min to reach convergence in 320 iterations with memory requirements of 560 MB on a single Pentium 2.4-GHz processor machine. Numerical simulations are illustrated for physical problems such as ball-grid array and large-scale randomly distributed vias, where we have observed the shielding effects of the terminated vias that reduce the coupling between vias.
Keywords :
S-parameters; ball grid arrays; circuit CAD; circuit analysis computing; circuit complexity; convergence of numerical methods; electromagnetic coupling; fast Fourier transforms; iterative methods; matrix decomposition; planar waveguides; printed circuit design; sparse matrices; table lookup; CPU time; Foldy-Lax equations; ball-grid array; computational efficiency; convergence rate; coupling between vias; cylindrical vias; fast Fourier transform; full-wave modeling; high-speed circuit-board design; iterative algorithm; large-scale via problem; multilayer test board; multiple scattering among vias; near-field sparse matrix; numerical simulations; planar waveguides; preconditioned sparse-matrix canonical-grid method; randomly distributed vias; scattering parameters; shielding effects; sparse-matrix LU decomposition; terminated vias; through-hole via; Computational efficiency; Equations; Fast Fourier transforms; Frequency; Iterative algorithms; Iterative methods; Large-scale systems; Planar waveguides; Scattering; Sparse matrices;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2003.821229
Filename :
1262670
Link To Document :
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