TY - JOUR
T1 - Model-order reduction of finite-element approximations of passive electromagnetic devices including lumped electrical-circuit models
AU - Wu, Hong
AU - Cangellaris, Andreas C.
N1 - Manuscript received December 15, 2003; revised June 1, 2004. This work was supported in part by Texas Instruments Incorporated under a custom research grant administered by the Semiconductor Research Corporation.
PY - 2004/9
Y1 - 2004/9
N2 - A methodology is presented for the development of reduced-order macromodels for multiport passive electro-magnetic devices that include embedded lumped elements. The proposed methodology utilizes a discrete state-space model for the electromagnetic device, generated through the application of the finite-element method for the spatial discretization of Maxwell's curl equations. The incorporation of lumped resistors, inductors, and capacitors is effected through the direct stamping of the state-space voltage-current relationship for these elements in the matrices of the generated state-space form of the discrete model. The conditions necessary for the discrete model to be passive are discussed. The subsequent reduction of the discrete state-space model is effected through the application of a Krylov-subspace-based model-order reduction scheme that guarantees the passivity of the generated multiport macromodel, provided that the original state-space model is passive. The proposed methodology is demonstrated and validated through its application for the generation of reduced-order macromodels for a coaxial cable circuit and a microstrip directional coupler circuit.
AB - A methodology is presented for the development of reduced-order macromodels for multiport passive electro-magnetic devices that include embedded lumped elements. The proposed methodology utilizes a discrete state-space model for the electromagnetic device, generated through the application of the finite-element method for the spatial discretization of Maxwell's curl equations. The incorporation of lumped resistors, inductors, and capacitors is effected through the direct stamping of the state-space voltage-current relationship for these elements in the matrices of the generated state-space form of the discrete model. The conditions necessary for the discrete model to be passive are discussed. The subsequent reduction of the discrete state-space model is effected through the application of a Krylov-subspace-based model-order reduction scheme that guarantees the passivity of the generated multiport macromodel, provided that the original state-space model is passive. The proposed methodology is demonstrated and validated through its application for the generation of reduced-order macromodels for a coaxial cable circuit and a microstrip directional coupler circuit.
KW - Fast algorithms
KW - Finite-element methods (FEMS)
KW - Full-wave computer-aided design (CAD)
KW - Model-order reduction
UR - https://www.scopus.com/pages/publications/4544331128
UR - https://www.scopus.com/pages/publications/4544331128#tab=citedBy
U2 - 10.1109/TMTT.2004.834582
DO - 10.1109/TMTT.2004.834582
M3 - Article
AN - SCOPUS:4544331128
SN - 0018-9480
VL - 52
SP - 2305
EP - 2313
JO - IEEE Transactions on Microwave Theory and Techniques
JF - IEEE Transactions on Microwave Theory and Techniques
IS - 9 II
ER -