Title :
Incorporation of Multiport Lumped Networks Into the Hybrid Time-Domain Finite-Element Analysis
Author :
Wang, Rui ; Jin, Jian-Ming
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Illinois at Urbana-Champaign, Urbana, IL, USA
Abstract :
A systematic and efficient algorithm is presented for incorporating multiport lumped networks in terms of admittance matrices into a hybrid field-circuit solver based on the extended time-domain finite-element method. The Laplace-domain admittance matrices are cast into the time-domain stepping equations for port voltages and currents to form a lumped-network subsystem, which is then interfaced with the finite-element and circuit subsystems through shared ports. While the port voltages of the lumped-network subsystem are determined by the finite-element and circuit subsystems, its port currents are treated as external current excitations for the finite-element and circuit subsystems. All the lumped-network port variables are then eliminated from the final expressions to form a global system for only the finite-element and circuit unknowns. The proposed algorithm further extends the capability of the existing field-circuit solver to model more complex and mixed-scale hybrid circuits, and the algorithm is validated and demonstrated through numerical examples.
Keywords :
circuit simulation; finite element analysis; lumped parameter networks; matrix algebra; time-domain analysis; admittance matrices; circuit subsystems; extended time-domain finite-element method; hybrid field-circuit solver; hybrid time-domain finite-element analysis; mixed-scale hybrid circuits; multiport lumped network; port current; port voltage; time-domain stepping equation; Admittance matrices; multiport lumped networks; recursive convolution; time-domain finite-element method (FEM); vector-fitting technique;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2009.2025459