Title :
Self-consistent impedance method for the solution of electromagnetic problems
Author :
Thiel, D.V. ; Mittra, R.
Author_Institution :
Sch. of Microelectron. Eng., Griffith Univ., Brisbane, Qld., Australia
Abstract :
A two-dimensional, self-consistent, impedance method for modelling electromagnetic problems has been derived from Faraday´s and Ampere´s Laws. The result is a single matrix equation for the magnetic field scaled by the constitutive electrical parameters of the media. From this a complete solution of the magnetic field is calculated for every cell in the solution space. The source field is introduced into the model as a fixed magnetic field value on the right hand side of this matrix equation. This extends previous formulations of the impedance method to cover a wider variety of electromagnetic problems across the complete electromagnetic spectrum, including all types of materials. An absorbing boundary consisting of a single cell backed by a PEC was optimised to give a reflection coefficient of less than -55 dB for normal incidence. The method has been applied to various models including CW scattering from a dielectric filament at 10 GHz to determine permittivity changes, waveguides containing lossy media, and VLF surface impedance calculations
Keywords :
electric impedance; electromagnetic wave scattering; electromagnetism; numerical analysis; 2D impedance method; CW scattering; EM problems solution; VLF surface impedance calculations; absorbing boundary; dielectric filament; electromagnetic problems; lossy media filled waveguides; magnetic field; matrix equation; modelling; permittivity changes; reflection coefficient; self-consistent impedance method; source field; two-dimensional impedance method; Dielectric losses; Dielectric materials; Electromagnetic modeling; Electromagnetic reflection; Electromagnetic spectrum; Equations; Impedance measurement; Magnetic fields; Magnetic materials; Transmission line matrix methods;
Conference_Titel :
Microwave Conference, 2000 Asia-Pacific
Conference_Location :
Sydney, NSW
Print_ISBN :
0-7803-6435-X
DOI :
10.1109/APMC.2000.925788