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A Full-Wave Hybrid Numerical Method for Quasi-Optical System With Multiple Complex Objects

delete2024-01-01
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PRE
AI
王正汹 (Z.X. Wang)
S
Shaozhe Zhang
H
Houxiu Xiao
X
Xianfei Chen
Z
Zhenxing Wang
L
Liangqian Xie
L
Lu, Yvting
韩小涛 (Xiaotao Han) *
DOI:10.1109/LAWP.2024.3518778delete
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Abstract

Abstract

En 中文
In this letter, to improve the calculation efficiency, a novel full-wave hybrid numerical method based on the finite-difference frequency domain method (FDFD) and the surface integral equation method (SIE) is proposed for the quasi-optical (QO) system featuring multiple objects with complex structure. The objects are modeled by FDFD in separate regions, which are coupled with each other and the reflectors in the QO system by SIE are derived from Stratton-Chu formula. The use of FDFD makes the solution matrix sparse, and employing SIE enables the elimination of grids on the transmission path, both of which can improve the calculation efficiency. A quasi-optical beam splitter system is taken as an example to prove the correctness and effectiveness of our method. Compared with the commercial software FEKO using the multilevel fast multipole method, the results calculated by our method are verified, and the calculation speed can be improved several times in normal case.
Keywords:
Couplings
Mathematical models
Difference equations
Vectors
Transmission line matrix methods
Optical surface waves
Integral equations
Frequency-domain analysis
Computational modeling
Tensors
Finite-difference frequency domain (FDFD) method
quasi-optical (QO)
Stratton-Chu formula
surface integral equation (SIE) method

Journal

IEEE Antennas and Wireless Propagation Letters cover
IEEE Antennas and Wireless Propagation Letters
IF:
4.8
Papers:
1.0W
Citations:
2.8W

Organization

No organization information available