Title :
Space mapping technique for electromagnetic optimization
Author :
Bandler, John W. ; Biernacki, Radoslaw M. ; Chen, Shao Hua ; Grobelny, Piotr A. ; Hemmers, Ronald H.
Author_Institution :
Dept. of Electr. & Comput. Eng., McMaster Univ., Hamilton, Ont., Canada
fDate :
12/1/1994 12:00:00 AM
Abstract :
We offer space mapping (SM), a fundamental new theory to circuit optimization utilizing a parameter space transformation. This technique is demonstrated by the optimization of a microstrip structure for which a convenient analytical/empirical model is assumed to be unavailable. For illustration, we focus upon a three-section microstrip impedance transformer and a double folded stub microstrip filter and explore various design characteristics utilizing an electromagnetic (EM) field simulator. We propose two distinct EM models: coarse for fast computations, and the corresponding fine for a few more accurate and well-targeted simulations. The coarse model, useful when circuit-theoretic models are not readily available, permits rapid exploration of different starting points, solution robustness, local minima, parameter sensitivities, yield-driven design and other design characteristics within a practical time frame. The computationally intensive fine model is used to verify the space-mapped designs obtained exploiting the coarse model, as well as in the SM process itself
Keywords :
circuit analysis computing; circuit optimisation; electromagnetic field theory; microstrip circuits; microwave circuits; EM field simulator; EM models; circuit optimization; design characteristics; double folded stub microstrip filter; electromagnetic optimization; microstrip structure; parameter space transformation; space mapping technique; three-section microstrip impedance transformer; Circuit optimization; Circuit simulation; Computational modeling; Design optimization; Geometry; Microstrip filters; Process design; Robustness; Samarium; Superconducting filters;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on