DocumentCode
1057075
Title
Loop-tree implementation of the adaptive integral method (AIM) for numerically-stable, broadband, fast electromagnetic modeling
Author
Okhmatovski, Vladimir I. ; Morsey, Jason D. ; Cangellaris, Andreas C.
Author_Institution
Cadence Design Syst. Inc., Tempe, AZ, USA
Volume
52
Issue
8
fYear
2004
Firstpage
2130
Lastpage
2140
Abstract
The adaptive integral method (AIM) is implemented in conjunction with the loop-tree (LT) decomposition of the electric current density in the method of moments approximation of the electric field integral equation. The representation of the unknown currents in terms of its solenoidal and irrotational components allows for accurate, broadband electromagnetic (EM) simulation without low-frequency numerical instability problems, while scaling of computational complexity and memory storage with the size of the problem are of the same order as in the conventional AIM algorithm. The proposed algorithm is built as an extension to the conventional AIM formulation that utilizes roof-top expansion functions, thus providing direct and easy way for the development of the new stable formulation when the roof-top based AIM is available. A new preconditioning strategy utilizing near interactions in the system which are typically available in the implementation of fast solvers is proposed and tested. The discussed preconditioner can be used with both roof-top and LT formulations of AIM and other fast algorithms. The resulting AIM implementation is validated through its application to the broadband, EM analysis of large microstrip antennas and planar interconnect structures.
Keywords
computational electromagnetics; electric field integral equations; method of moments; microstrip antenna arrays; adaptive integral method; broadband EM analysis; electric current density; electric field integral equation; fast algorithms; full-wave electromagnetic modeling; loop-tree formulations; method of moments approximation; microstrip antennas; numerically-stable broadband fast electromagnetic modeling; planar interconnect structures; preconditioning strategy; roof-top expansion functions; Broadband antennas; Computational complexity; Computational modeling; Current; Electromagnetic modeling; Integral equations; Microstrip antennas; Moment methods; Numerical simulation; System testing; CAD; EM; Fast algorithms; LT; MoM; decomposition; full-wave electromagnetic; loop-tree; low frequency; method of moments;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2004.832326
Filename
1321345
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