Title :
Efficient FDTD/matrix-pencil method for the full-wave scattering parameter analysis of waveguiding structures
Author :
Ritter, Jan ; Amdt, F.
Author_Institution :
Microwave Dept., Bremen Univ., Germany
fDate :
12/1/1996 12:00:00 AM
Abstract :
A combined finite-difference time-domain/matrix-pencil method is presented for the efficient and rigorous calculation of the full-wave modal S-parameters of waveguide components including structures of more general shape or high complexity. The application of the S-parameter definition for unmatched ports requires merely standard Mur´s absorbing boundaries for reliable results, and a nonorthogonal or contour path mesh formulation allows the convenient inclusion of curved boundaries. The efficiency of the method is demonstrated for the analysis of waveguide and monolithic microwave/millimeter wave integrated circuit (MMIC) components of practical importance, such as the twisted waveguide, the twisted waveguide bend, the post compensated magic T, the waffle-iron filter, and the MMIC spiral inductor including an air bridge. The method is verified by excellent agreement with measurements, with finite element method (FEM) or moment method results
Keywords :
MIMIC; MMIC; S-parameters; finite difference time-domain analysis; matrix algebra; waveguide components; waveguide theory; FDTD/matrix-pencil method; MIMIC components; MMIC components; MMIC spiral inductor; Mur absorbing boundaries; air bridge; contour path mesh formulation; curved boundaries; finite-difference time-domain method; full-wave modal S-parameters; full-wave scattering parameter analysis; monolithic microwave integrated circuit; monolithic millimeter wave integrated circuit; nonorthogonal mesh formulation; post compensated magic T; twisted waveguide bend; waffle-iron filter; waveguide components; waveguiding structures; Finite difference methods; Integrated circuit reliability; MMICs; Microwave theory and techniques; Millimeter wave measurements; Scattering parameters; Shape; Time domain analysis; Transmission line matrix methods; Waveguide components;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on