DocumentCode :
996392
Title :
An improved FDTD formulation for general linear lumped microwave circuits based on matrix theory
Author :
Shao, Zhenhai ; Fujise, Masayuki
Author_Institution :
Wireless Commun. Lab., Nat. Inst. of Inf. & Commun. Technol., Singapore
Volume :
53
Issue :
7
fYear :
2005
fDate :
7/1/2005 12:00:00 AM
Firstpage :
2261
Lastpage :
2266
Abstract :
An improved finite-difference time-domain (FDTD) formulation using the matrix theory is presented to analyze hybrid general linear lumped and distribution microwave circuits. Traditionally, since discrete current expressions of lumped circuits should be substituted into Maxwell´s equations explicitly, the different discrete formulations of Maxwell´s equations should be reconstructed when different active circuits are used. It will be much more difficult when high-order linear lumped circuits are considered in a hybrid system. In our improved formulation, a high-order linear lumped circuit is expressed by a serials of first-order modified integral transforms. When their interior variables together with electric fields, port voltage, and port current/current density of active circuits are considered as a vector, a local implicit and iterative matrix expression can be built. Compared with the traditional method, since our improved FDTD formulation is implicit, it easily combines with other active circuits built by the matrix method and decreases the condition number, is more stable, flexible, and general. Based on this formulation, the numerical stability and condition number are discussed. Simulation shows that the results by our improved FDTD formulation are in good agreement with that from commercial software.
Keywords :
finite difference time-domain analysis; iterative methods; linear network analysis; lumped parameter networks; matrix algebra; microwave circuits; numerical stability; transforms; FDTD formulation; condition number; finite-difference time-domain formulation; first-order modified integral transforms; general linear lumped microwave circuits; hybrid microwave circuits; iterative matrix expression; linear distribution microwave circuits; matrix theory; microwave circuit analysis; numerical stability; Active circuits; Current density; Discrete transforms; Finite difference methods; Matrices; Maxwell equations; Microwave circuits; Microwave theory and techniques; Time domain analysis; Voltage; Condition number; finite difference time domain (FDTD); integral transform; linear lumped circuit; matrix theory;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2005.850450
Filename :
1463343
Link To Document :
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