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Structural damage detection using finite element model updating with evolutionary algorithms: a survey

机译:使用有限元模型和进化算法更新进行结构损伤检测:一项调查

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摘要

Structural damage identification based on finite element (FE) model updating has been a research direction of increasing interest over the last decade in the mechanical, civil, aerospace, etc., engineering fields. Various studies have addressed direct, sensitivity-based, probabilistic, statistical, and iterative methods for updating FE models for structural damage identification. In contrast, evolutionary algorithms (EAs) are a type of modern method for FE model updating. Structural damage identification using FE model updating by evolutionary algorithms is an active research focus in progress but lacking a comprehensive survey. In this situation, this study aims to present a review of critical aspects of structural damage identification using evolutionary algorithm-based FE model updating. First, a theoretical background including the structural damage detection problem and the various types of FE model updating approaches is illustrated. Second, the various residuals between dynamic characteristics from FE model and the corresponding physical model, used for constructing the objective function for tracking damage, are summarized. Third, concerns regarding the selection of parameters for FE model updating are investigated. Fourth, the use of evolutionary algorithms to update FE models for damage detection is examined. Fifth, a case study comparing the applications of two single-objective EAs and one multi-objective EA for FE model updating-based damage detection is presented. Finally, possible research directions for utilizing evolutionary algorithm-based FE model updating to solve damage detection problems are recommended. This study should help researchers find crucial points for further exploring theories, methods, and technologies of evolutionary algorithm-based FE model updating for structural damage detection.
机译:在过去的十年中,基于有限元(FE)模型更新的结构损伤识别一直是机械,民用,航空航天等工程领域中日益引起人们关注的研究方向。各种研究都针对直接,基于灵敏度,概率,统计和迭代方法来更新有限元模型进行结构损伤识别。相反,进化算法(EA)是一种用于FE模型更新的现代方法。使用进化算法更新有限元模型进行结构损伤识别是一个积极的研究重点,但缺乏全面的研究。在这种情况下,本研究旨在使用基于进化算法的有限元模型更新对结构损伤识别的关键方面进行回顾。首先,说明了理论背景,包括结构损伤检测问题和各种类型的有限元模型更新方法。其次,总结了有限元模型的动态特性与相应物理模型之间的各种残差,这些残差用于构建跟踪损伤的目标函数。第三,研究了有关有限元模型更新的参数选择问题。第四,研究了使用进化算法更新有限元模型以进行损伤检测。第五,提出了一个案例研究,比较了两个单目标EA和一个多目标EA在基于FE模型更新的损伤检测中的应用。最后,提出了利用基于进化算法的有限元模型更新解决损伤检测问题的可能研究方向。这项研究应有助于研究人员找到关键点,以进一步探索用于结构损伤检测的基于进化算法的有限元模型更新的理论,方法和技术。

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