DocumentCode :
820737
Title :
Finite-difference frequency-domain algorithm for modeling guided-wave properties of substrate integrated waveguide
Author :
Xu, Feng ; Zhang, Yulin ; Hong, Wei ; Wu, Ke ; Cui, Tie Jun
Author_Institution :
Center for Comput. Electromagn., Southeast Univ., Nanjing, China
Volume :
51
Issue :
11
fYear :
2003
Firstpage :
2221
Lastpage :
2227
Abstract :
In multilayer microwave integrated circuits such as low-temperature co-fired ceramics or multilayered printed circuit boards, waveguide-like structures can be fabricated by using periodic metallic via-holes referred to as substrate integrated waveguide (SIW). Such SIW structures can largely preserve the advantages of conventional rectangular waveguides such as high-Q factor and high power capacity. However, they are subject to leakage due to periodic gaps, which potentially results in wave attenuation. Therefore, such a guided-wave modeling problem becomes a very complicated complex eigenvalue problem. Since the SIW are bilaterally unbounded, absorbing boundary conditions should be deployed in numerical algorithms. This often leads to a difficult complex root-extracting problem of a transcend equation. In this paper, we present a novel finite-difference frequency-domain algorithm with a perfectly matched layer and Floquet´s theorem for the analysis of SIW guided-wave problems. In this scheme, the problem is converted into a generalized matrix eigenvalue problem and finally transformed to a standard matrix eigenvalue problem that can be solved with efficient subroutines available. This approach has been validated by experiment.
Keywords :
ceramic packaging; eigenvalues and eigenfunctions; finite difference methods; frequency-domain analysis; hybrid integrated circuits; matrix algebra; microwave integrated circuits; periodic structures; planar waveguides; printed circuits; substrates; waveguide theory; FDFD algorithm; Floquet´s theorem; LTCC; PML; absorbing boundary conditions; finite-difference frequency-domain algorithm; generalized matrix eigenvalue problem; guided-wave modeling problem; guided-wave properties modeling; high power capacity; high-Q factor; leakage; low-temperature co-fired ceramics; multilayer MIC; multilayer microwave integrated circuits; multilayered PCBs; multilayered printed circuit boards; numerical algorithms; open periodic structure; perfectly matched layer; periodic metallic via-holes; standard matrix eigenvalue problem; substrate integrated waveguide; wave attenuation; waveguide-like structures; Ceramics; Eigenvalues and eigenfunctions; Finite difference methods; Matrix converters; Microwave integrated circuits; Nonhomogeneous media; Periodic structures; Printed circuits; Rectangular waveguides; Transmission line matrix methods;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2003.818935
Filename :
1242984
Link To Document :
بازگشت