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Highly efficient full-wave electromagnetic analysis of 3-D arbitrarily shaped waveguide microwave devices using an integral equation technique

机译:使用积分方程技术对3-D任意形状波导微波器件进行高效的全波电磁分析

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摘要

A novel technique for the full-wave analysis of 3-D complex waveguide devices is presented. This new formulation, based on the Boundary Integral-Resonant Mode Expansion (BI-RME) method, allows the rigorous full-wave electromagnetic characterization of 3-D arbitrarily shaped metallic structures making use of extremely low CPU resources (both time and memory). The unknown electric current density on the surface of the metallic elements is represented by means of Rao-Wilton-Glisson basis functions, and an algebraic procedure based on a singular value decomposition is applied to transform such functions into the classical solenoidal and nonsolenoidal basis functions needed by the original BI-RME technique. The developed tool also provides an accurate computation of the electromagnetic fields at an arbitrary observation point of the considered device, so it can be used for predicting high-power breakdown phenomena. In order to validate the accuracy and efficiency of this novel approach, several new designs of band-pass waveguides filters are presented. The obtained results (S-parameters and electromagnetic fields) are successfully compared both to experimental data and to numerical simulations provided by a commercial software based on the finite element technique. The results obtained show that the new technique is specially suitable for the efficient full-wave analysis of complex waveguide devices considering an integrated coaxial excitation, where the coaxial probes may be in contact with the metallic insets of the component.
机译:提出了一种用于3D复杂波导器件全波分析的新技术。这种基于边界积分共振模式扩展(BI-RME)方法的新公式,可以利用极低的CPU资源(时间和内存)对3D任意形状的金属结构进行严格的全波电磁表征。金属元素表面上的未知电流密度通过Rao-Wilton-Glisson基函数表示,并且基于奇异值分解的代数过程被应用于将这些函数转换为所需的经典螺线管和非电磁基函数通过原始的BI-RME技术。开发的工具还可以在考虑的设备的任意观察点提供准确的电磁场计算,因此可以用于预测大功率击穿现象。为了验证这种新颖方法的准确性和效率,提出了几种带通波导滤波器的新设计。将获得的结果(S参数和电磁场)成功地与实验数据以及由基于有限元技术的商用软件提供的数值模拟进行了比较。获得的结果表明,考虑到集成的同轴激励,该新技术特别适用于复杂波导器件的高效全波分析,其中同轴探针可能与组件的金属插图接触。

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