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首页> 外文期刊>IEEE Transactions on Microwave Theory and Techniques >Rapid Simulation-Driven Multiobjective Design Optimization of Decomposable Compact Microwave Passives
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Rapid Simulation-Driven Multiobjective Design Optimization of Decomposable Compact Microwave Passives

机译:可分解紧凑型微波无源器件的快速仿真驱动多目标设计优化

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摘要

In this paper, a methodology for fast multiobjective optimization of the miniaturized microwave passives has been presented. Our approach is applicable to circuits that can be decomposed into individual cells [e.g., compact microstrip resonant cells (CMRCs)]. The structures are individually modeled using their corresponding equivalent circuits and aligned with their accurate, EM simulated representations, by means of implicit space mapping (ISM). The ISM-corrected cells are then assembled into the entire structures and their Pareto-optimal solutions (here, representing the best possible tradeoffs between the structure size and electrical performance) are obtained using evolutionary methods. The refinement is then carried out for the selected structure realizations using, again, SM. The latter stage is necessary, because the cell-based equivalent circuit models do not account for EM cross-couplings between the cells. The proposed methodology allows for rapid identification of compromise geometries concerning size-performance tradeoffs and, more importantly, permits quality comparison of particular CMRC realizations from the point of view of their suitability for a given compact circuit implementation. Our approach is demonstrated using several variations of the three-section wideband impedance matching transformers consisting of two types of CMRC structures. Numerical validation of the results is provided.
机译:在本文中,提出了一种用于微波无源器件的快速多目标优化的方法。我们的方法适用于可分解为单个单元的电路[例如,紧凑型微带谐振单元(CMRC)]。使用其对应的等效电路分别对结构进行建模,并通过隐式空间映射(ISM)将其与精确的EM模拟表示对齐。然后将经过ISM校正的单元组装到整个结构中,并使用进化方法获得其帕累托最优解(此处代表结构尺寸和电性能之间的最佳折衷)。然后再次使用SM对选定的结构实现进行优化。后一阶段是必需的,因为基于单元的等效电路模型不考虑单元之间的EM交叉耦合。所提出的方法允许快速识别关于尺寸性能折衷的折衷几何形状,并且更重要的是,从特定CMRC实现对于给定的紧凑电路实现的适用性的角度出发,可以进行质量比较。我们的方法通过使用由两种类型的CMRC结构组成的三段式宽带阻抗匹配变压器的几种变型进行了演示。提供了结果的数值验证。

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