Title :
Mixed Finite-Element Time-Domain Method for Transient Maxwell Equations in Doubly Dispersive Media
Author :
Donderici, Burkay ; Teixeira, Fernando L.
Author_Institution :
Ohio State Univ., Columbus
Abstract :
We describe a mixed finite-element time-domain algorithm to solve transient Maxwell equations in inhomogeneous and doubly dispersive linear media where both the permittivity and permeability are functions of frequency. The mixed finite-element time-domain algorithm is based on the simultaneous use of both electric and magnetic field as state variables with a mix of edge (Whitney 1-form) and face (Whitney 2-form) elements for discretization of the coupled first-order Maxwell curl equations. The constitutive relations are decoupled from the curl equations and cast in terms of (auxiliary) ordinary differential equations involving time derivatives. Permittivity and permeability dispersion models considered here are quite general and recover Lorentz, Debye, and Drude models as special cases. The present finite-element time-domain algorithm also incorporates the perfectly matched layer absorbing boundary conditions in a natural way.
Keywords :
Maxwell equations; differential equations; dispersive media; electric field effects; electromagnetic wave propagation; finite element analysis; magnetic field effects; magnetic permeability; permittivity; time-domain analysis; coupled first-order Maxwell curl equations; doubly dispersive media; electric field; inhomogeneous dispersive linear media; magnetic field; mixed finite-element time-domain method; ordinary differential equations; permeability; permittivity; transient Maxwell equations; Differential equations; Dispersion; Finite element methods; Frequency; Maxwell equations; Nonhomogeneous media; Nonuniform electric fields; Permeability; Permittivity; Time domain analysis; Dispersive media; finite element time domain;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2007.912217