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A Complete Finite-Element Analysis of Multilayer Anisotropic Transmission Lines From DC to Terahertz Frequencies

机译:从直流到太赫兹频率的多层各向异性传输线的完整有限元分析

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A complete and efficient transmission line simulation framework and the techniques involved are reported in this paper. A highly efficient finite-element quasi-TEM technique with comparable full-wave accuracy is applied as our fundamental simulation method. The fast quasi-TEM analysis is first performed over the entire frequency band with a self-estimation of solution accuracy. Then, depending on the requirement of accuracy, a switch frequency can be determined and a full-wave modal solver is automatically initiated to solve the problem up to the high frequency end. In addition, we apply improved model-order reduction methods in both the quasi-TEM and full-wave analyses to further speed up a simulation. Thus, the quasi-TEM and full-wave techniques as well as their associated model-order reduction methods are integrated to provide an efficient and accurate simulation from dc to very high frequencies. As for the versatility of the solver, the material loss, anisotropism, and frequency dependence are all taken into account in our formulations in order to provide a more complete field-based transmission line modeling.
机译:本文报道了一个完整而有效的传输线仿真框架和所涉及的技术。具有可比的全波精度的高效有限元准TEM技术被用作我们的基本仿真方法。快速准TEM分析是在整个频带上进行的,并且需要对解算精度进行自我评估。然后,根据精度要求,可以确定开关频率,并自动启动全波模态求解器以解决直至高频端的问题。此外,我们在准TEM和全波分析中都应用了改进的模型阶数减少方法,以进一步加快仿真速度。因此,将准TEM和全波技术及其相关的模型阶数减少方法进行了集成,以提供从直流到非常高频率的有效且准确的仿真。至于求解器的多功能性,我们的公式中都考虑了材料损失,各向异性和频率依赖性,以便提供更完整的基于现场的传输线建模。

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