核壳陀螺电-各向同性和各向同性陀螺电BoRs的电磁散射

IF 1.8 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Grigorios P. Zouros;Georgios D. Kolezas;Konstantinos Katsinos
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引用次数: 0

摘要

我们采用扩展边界条件方法(EBCM),构造了各向异性核壳旋转体(BoRs)电磁散射问题的解。特别地,研究了两种不同的核壳结构:旋电各向同性和各向同性旋电装置。为了构造解,我们使用了两组积分表示(IR)——每个求解的配置一组积分表示——以及根据陀螺电区域的球面矢量波函数(SVWFs)对场的离散本征函数(DE)展开。我们通过与HFSS商业软件进行比较,证明了该方法的有效性和计算性能,适用于各种核壳装置,如球形、圆柱形和组合球形-圆柱形BoRs。我们还使用ADDA,离散偶极子近似(DDA)方法的一个特定版本,来追踪电子制动控制模块的有效性边界。最后,我们介绍了该方法在磁可调谐球形太赫兹天线研究中的应用。该方法可用于各种潜在的EM应用,包括微波、功能光子学结构以及纳米天线工程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
EM Scattering by Core-Shell Gyroelectric-Isotropic and Isotropic-Gyroelectric BoRs Using the EBCM
We employ the extended boundary condition method (EBCM) and construct a solution for the problem of electromagnetic (EM) scattering by anisotropic core-shell bodies of revolution (BoRs). In particular, two different core-shell configurations are examined: the gyroelectric-isotropic and the isotropic-gyroelectric setup. To construct the solution, we employ two groups of integral representations (IRs)—one group for each configuration solved—in conjunction with the discrete eigenfunction (DE) expansion of the fields in terms of spherical vector wave functions (SVWFs) for the gyroelectric regions. We demonstrate the validity and the computational performance of the method by comparisons with the HFSS commercial software for various core-shell setups such as spheroidal, cylindrical, and combined spherical-cylindrical BoRs. We also employ ADDA, a particular version of the discrete dipole approximation (DDA) method, to trace the boundaries of validity of the EBCM. Finally, we present an application of the method to the study of magnetically-tunable spheroidal THz antennas. The method can be used in a variety of potential EM applications including microwaves, functional photonics structures, as well as nanoantenna engineering.
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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
27
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