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Computationally-efficient surrogate-assisted dimension scaling of compact dual-band couplers

机译:紧凑型双频耦合器的高效计算替代辅助尺寸缩放

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Reusing existing results in order to facilitate optimisation of structures for various sets of performance requirements such as operating frequencies is an attractive concept. When implemented properly, it can lead to considerable speedup of the microwave design process. In general, re-design of microwave structures is a challenging task, particularly for compact components where considerable electromagnetic (EM) cross-couplings make the relationships between geometry parameters and the structure responses complex. In this study, the authors address geometry scaling of miniaturised dual-band couplers by means of inverse surrogate modelling. It allows for fast estimation of the optimum values of structure dimensions corresponding to required operating frequencies, independently for each band. The inverse surrogate is constructed based on a set of reference designs obtained by optimising the equivalent circuit model of the coupler, and subsequently corrected using output space mapping to accommodate the discrepancies between the network model and the EM-simulation one. As demonstrated using a compact dual-band microstrip branch-line coupler example, geometry scaling is possible in a wide range of operating frequencies and at a very low cost of just a single EM simulation of the structure at hand. Numerical results are validated through physical measurements of fabricated coupler prototypes for several test cases.
机译:重新利用现有结果以便于针对各种性能要求集(例如工作频率)优化结构是一个有吸引力的概念。如果实施得当,它可以大大加快微波设计过程。通常,对微波结构进行重新设计是一项艰巨的任务,尤其是对于紧凑的组件,在紧凑的组件中,大量的电磁(EM)交叉耦合使几何参数与结构响应之间的关系变得复杂。在这项研究中,作者通过反向替代模型解决了小型化双频带耦合器的几何缩放问题。它允许针对每个频段独立地快速估计与所需工作频率相对应的结构尺寸的最佳值。反向代理是基于一组参考设计构建的,该参考设计是通过优化耦合器的等效电路模型而获得的,然后使用输出空间映射进行校正以适应网络模型与EM仿真模型之间的差异。如使用紧凑型双频带微带支线耦合器示例所演示的,仅需对结构进行一次EM仿真,就可以在很宽的工作频率范围内以极低的成本进行几何缩放。通过对几个测试案例的耦合器原型进行物理测量,可以验证数值结果。

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