DocumentCode
1292847
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
Volume
44
Issue
12
fYear
1996
fDate
12/1/1996 12:00:00 AM
Firstpage
2450
Lastpage
2456
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;
fLanguage
English
Journal_Title
Microwave Theory and Techniques, IEEE Transactions on
Publisher
ieee
ISSN
0018-9480
Type
jour
DOI
10.1109/22.554577
Filename
554577
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