Topology optimization design of resonant structures based on antiresonance eigenfrequency matching informed by harmonic analysis

IF 2.9 3区 工程技术 Q2 ENGINEERING, MECHANICAL Journal of Mechanical Design Pub Date : 2023-07-03 DOI:10.1115/1.4062882
Daniel Giraldo Guzman, C. Lissenden, P. Shokouhi, M. Frecker
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Abstract

In this paper, we present a design methodology for resonant structures exhibiting particular dynamic responses by combining an eigenfrequency matching approach and a harmonic analysis-informed eigenmode identification strategy. This systematic design methodology, based on topology optimization, introduces a novel computationally efficient approach for 3D dynamic problems requiring antiresonances at specific target frequencies subject to specific harmonic loads. The optimization's objective function minimizes the error between target antiresonance frequencies and the actual structure's antiresonance eigenfrequencies, while the harmonic analysis-informed identification strategy compares harmonic displacement responses against eigenvectors using a modal assurance criterion, therefore ensuring an accurate recognition and selection of appropriate antiresonance eigenmodes used during the optimization process. At the same time, this method effectively prevents well-known problems in topology optimization of eigenfrequencies such as localized eigenmodes in low-density regions, eigenmodes switching order, and repeated eigenfrequencies. Additionally, our proposed localized eigenmode identification approach completely removes the spurious eigenmodes from the optimization problem by analyzing the eigenvectors' response in low-density regions compared to high-density regions. The topology optimization problem is formulated with a density-based parametrization and solved with a gradient-based sequential linear programming method, including material interpolation models and topological filters. Two case studies demonstrate that the proposed design methodology successfully generates antiresonances at the desired target frequency subject to different harmonic loads, design domain dimensions, mesh discretization, or material properties.
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基于谐波分析的反共振特征频率匹配的谐振结构拓扑优化设计
在本文中,我们通过结合特征频率匹配方法和谐波分析通知的特征模态识别策略,提出了一种具有特定动态响应的谐振结构的设计方法。这种基于拓扑优化的系统设计方法,为需要在特定目标频率下受特定谐波载荷的反谐振的三维动态问题引入了一种新的计算效率方法。优化的目标函数使目标反共振频率与实际结构的反共振特征频率之间的误差最小化,而谐波分析信息识别策略使用模态保证准则将谐波位移响应与特征向量进行比较,从而确保在优化过程中准确识别和选择适当的反共振特征模态。同时,该方法有效地避免了特征频率拓扑优化中存在的低密度区域局域化特征模、特征模切换顺序、特征频率重复等问题。此外,我们提出的局部特征模态识别方法通过分析低密度区域与高密度区域的特征向量响应,完全消除了优化问题中的伪特征模态。该拓扑优化问题采用基于密度的参数化方法,并采用基于梯度的顺序线性规划方法求解,包括材料插值模型和拓扑滤波器。两个案例研究表明,所提出的设计方法在不同的谐波载荷、设计域尺寸、网格离散化或材料特性的影响下,成功地在期望的目标频率上产生反谐振。
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来源期刊
Journal of Mechanical Design
Journal of Mechanical Design 工程技术-工程:机械
CiteScore
8.00
自引率
18.20%
发文量
139
审稿时长
3.9 months
期刊介绍: The Journal of Mechanical Design (JMD) serves the broad design community as the venue for scholarly, archival research in all aspects of the design activity with emphasis on design synthesis. JMD has traditionally served the ASME Design Engineering Division and its technical committees, but it welcomes contributions from all areas of design with emphasis on synthesis. JMD communicates original contributions, primarily in the form of research articles of considerable depth, but also technical briefs, design innovation papers, book reviews, and editorials. Scope: The Journal of Mechanical Design (JMD) serves the broad design community as the venue for scholarly, archival research in all aspects of the design activity with emphasis on design synthesis. JMD has traditionally served the ASME Design Engineering Division and its technical committees, but it welcomes contributions from all areas of design with emphasis on synthesis. JMD communicates original contributions, primarily in the form of research articles of considerable depth, but also technical briefs, design innovation papers, book reviews, and editorials.
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