Ming Jiang;Wei Jian Ran;Jun Wei Wu;Xiong Yang;Yin Li;Rui Yuan Wu;Qiang Cheng;Jun Hu;Tie Jun Cui
{"title":"Efficient and Accurate Simulations of Metamaterials Based on Domain Decomposition and Unit Feature Database","authors":"Ming Jiang;Wei Jian Ran;Jun Wei Wu;Xiong Yang;Yin Li;Rui Yuan Wu;Qiang Cheng;Jun Hu;Tie Jun Cui","doi":"10.1109/TAP.2024.3436679","DOIUrl":null,"url":null,"abstract":"Recently, there has been tremendous interest in studying electromagnetic (EM) metamaterials. However, the full-wave simulations of large and complex metamaterials are challenging. This work proposes a novel technique for efficient and accurate simulations of metamaterials composed of finite types of units. The technique follows the framework of finite element method and boundary element method (FEM-BEM) and treats the metamaterial units by domain decomposition method (DDM). Since there are finite types of units, the various couplings among them, including the self and mutual ones, can be fully captured by analyzing characteristic subarrays. The technique first performs such analyses with low memory and CPU costs and stores the results in a database. The stored data are then used in assembling the system matrix of the overall metamaterial. Thanks to this, it is applicable to large-scale arrays without recourse to overall modeling and meshing. Furthermore, the technique significantly reduces the computational burden since only the inverse matrices of finite types of units are calculated during the iteration process of DDM. The effectiveness and accuracy of the technique are validated by realistic numerical examples. The technique facilitates accurate and efficient analyses of metamaterials and will find practical value in engineering applications, especially the design, optimization, and planning of reconfigurable intelligent surfaces (RISs).","PeriodicalId":13102,"journal":{"name":"IEEE Transactions on Antennas and Propagation","volume":"72 11","pages":"8635-8646"},"PeriodicalIF":5.8000,"publicationDate":"2024-08-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"IEEE Transactions on Antennas and Propagation","FirstCategoryId":"94","ListUrlMain":"https://ieeexplore.ieee.org/document/10630590/","RegionNum":1,"RegionCategory":"计算机科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, ELECTRICAL & ELECTRONIC","Score":null,"Total":0}
引用次数: 0
Abstract
Recently, there has been tremendous interest in studying electromagnetic (EM) metamaterials. However, the full-wave simulations of large and complex metamaterials are challenging. This work proposes a novel technique for efficient and accurate simulations of metamaterials composed of finite types of units. The technique follows the framework of finite element method and boundary element method (FEM-BEM) and treats the metamaterial units by domain decomposition method (DDM). Since there are finite types of units, the various couplings among them, including the self and mutual ones, can be fully captured by analyzing characteristic subarrays. The technique first performs such analyses with low memory and CPU costs and stores the results in a database. The stored data are then used in assembling the system matrix of the overall metamaterial. Thanks to this, it is applicable to large-scale arrays without recourse to overall modeling and meshing. Furthermore, the technique significantly reduces the computational burden since only the inverse matrices of finite types of units are calculated during the iteration process of DDM. The effectiveness and accuracy of the technique are validated by realistic numerical examples. The technique facilitates accurate and efficient analyses of metamaterials and will find practical value in engineering applications, especially the design, optimization, and planning of reconfigurable intelligent surfaces (RISs).
最近,人们对电磁(EM)超材料的研究产生了极大的兴趣。然而,对大型复杂超材料进行全波模拟具有挑战性。本研究提出了一种新技术,用于高效、准确地模拟由有限类型单元组成的超材料。该技术遵循有限元法和边界元法(FEM-BEM)框架,采用域分解法(DDM)处理超材料单元。由于存在有限类型的单元,因此可以通过分析特征子阵列来充分捕捉它们之间的各种耦合,包括自耦合和互耦合。该技术首先以较低的内存和 CPU 成本执行此类分析,并将结果存储到数据库中。然后,将存储的数据用于组装整个超材料的系统矩阵。因此,该技术适用于大规模阵列,无需进行整体建模和网格划分。此外,由于在 DDM 的迭代过程中只计算有限类型单元的逆矩阵,因此该技术大大减轻了计算负担。现实的数值实例验证了该技术的有效性和准确性。该技术有助于对超材料进行精确、高效的分析,并将在工程应用中,特别是可重构智能表面(RIS)的设计、优化和规划中找到实用价值。
期刊介绍:
IEEE Transactions on Antennas and Propagation includes theoretical and experimental advances in antennas, including design and development, and in the propagation of electromagnetic waves, including scattering, diffraction, and interaction with continuous media; and applications pertaining to antennas and propagation, such as remote sensing, applied optics, and millimeter and submillimeter wave techniques