Xiaoming Wang, Haojie Chen, Yang Yang, Lin Cao, Yufeng Jin
{"title":"Fast Design of a Multilayer Interdigital Filter Exploiting Trust Region Aggressive Space Mapping","authors":"Xiaoming Wang, Haojie Chen, Yang Yang, Lin Cao, Yufeng Jin","doi":"10.1109/EPTC56328.2022.10013086","DOIUrl":null,"url":null,"abstract":"Multilayer microstrip interdigital filter has become a research hotspot with the development of miniaturization and high integration. Many electromagnetic optimization methods have been developed with the increasing complexity and design difficulty of multilayer interdigital filters. Aggressive Space Mapping (ASM) algorithm has poor convergence and Implicit Spatial Mapping algorithm is limited to modeling structures with equivalent circuit models in ADS. Hence the improved Trust Region Aggressive Space Mapping (TRASM) algorithm is adopted to map between the coarse and fine models in this paper, where the coarse model is the coupling matrix and the fine model is the model in HFSS. Modal Vector Fitting (MVF) algorithm is used to get the coupling matrix, which enhances the uniqueness of the extraction step. This paper proposes a four-order and four-layer interdigital filter with a pass band of 8–9 GHz and an in-band return loss of 20.34 dB. The TRASM method based on MVF can complete the optimization in about 90 minutes with only two iterations, which is better than that of ASM and full- wave electromagnetic simulation. The innovative algorithm with efficient optimization proposed in this paper will be applied in electromagnetic optimization of multilayer filters extensively and improve the accuracy and simulation efficiency significantly.","PeriodicalId":163034,"journal":{"name":"2022 IEEE 24th Electronics Packaging Technology Conference (EPTC)","volume":"18 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2022-12-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"2022 IEEE 24th Electronics Packaging Technology Conference (EPTC)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/EPTC56328.2022.10013086","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Multilayer microstrip interdigital filter has become a research hotspot with the development of miniaturization and high integration. Many electromagnetic optimization methods have been developed with the increasing complexity and design difficulty of multilayer interdigital filters. Aggressive Space Mapping (ASM) algorithm has poor convergence and Implicit Spatial Mapping algorithm is limited to modeling structures with equivalent circuit models in ADS. Hence the improved Trust Region Aggressive Space Mapping (TRASM) algorithm is adopted to map between the coarse and fine models in this paper, where the coarse model is the coupling matrix and the fine model is the model in HFSS. Modal Vector Fitting (MVF) algorithm is used to get the coupling matrix, which enhances the uniqueness of the extraction step. This paper proposes a four-order and four-layer interdigital filter with a pass band of 8–9 GHz and an in-band return loss of 20.34 dB. The TRASM method based on MVF can complete the optimization in about 90 minutes with only two iterations, which is better than that of ASM and full- wave electromagnetic simulation. The innovative algorithm with efficient optimization proposed in this paper will be applied in electromagnetic optimization of multilayer filters extensively and improve the accuracy and simulation efficiency significantly.
随着微型化和高集成化的发展,多层微带数字间滤波器已成为研究热点。随着多层数字间滤波器的复杂性和设计难度的增加,人们开发了许多电磁优化方法。ASM (Aggressive Space Mapping)算法收敛性差,且隐式空间映射算法在ADS中仅限于用等效电路模型对结构进行建模,因此本文采用改进的Trust Region Aggressive Space Mapping (TRASM)算法在粗模型和精模型之间进行映射,其中粗模型为耦合矩阵,精模型为HFSS中的模型。采用模态向量拟合(Modal Vector Fitting, MVF)算法得到耦合矩阵,增强了提取步骤的唯一性。本文提出了一种四阶四层数字间滤波器,其通频带为8 - 9ghz,带内回波损耗为20.34 dB。基于MVF的TRASM方法只需两次迭代即可在90分钟左右完成优化,优于ASM和全波电磁仿真。本文提出的高效优化的创新算法将广泛应用于多层滤波器的电磁优化,显著提高精度和仿真效率。