Structural-Health-Monitoring-Oriented Finite Element Model for a Specially Shaped Steel Arch Bridge and Its Application

IF 1.9 Q2 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Mathematical & Computational Applications Pub Date : 2023-02-28 DOI:10.3390/mca28020033
Li Dai, Mi-Da Cui, Xiao-Xiang Cheng
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引用次数: 1

Abstract

To rigorously evaluate the health of a steel bridge subjected to vehicle-induced fatigue, both a detailed numerical model and effective fatigue analysis methods are needed. In this paper, the process for establishing the structural health monitoring (SHM)-oriented finite element (FE) model and assessing the vehicle-induced fatigue damage is presented for a large, specially shaped steel arch bridge. First, the bridge is meticulously modeled using multiple FEs to facilitate the exploration of the local structural behavior. Second, manual tuning and model updating are conducted according to the modal parameters measured at the bridge’s location. Since the numerical model comprises a large number of FEs, two surrogate-model-based methods are employed to update the model. Third, the established models are validated by using them to predict the structure’s mode shapes and the actual structural behavior for the case in which the whole bridge is subjected to static vehicle loads. Fourth, using the numerical model, a new fatigue analysis method based on the high-circle fatigue damage accumulation theory is employed to further analyze the vehicle-induced fatigue damage to the bridge. The results indicate that manual tuning and model updating are indispensable for SHM-oriented FE models with erroneous configurations, and one surrogate-model-based model updating method is effective. In addition, it is shown that the fatigue analysis method based on the high-circle fatigue damage accumulation theory is applicable to real-world engineering cases.
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面向结构健康监测的异形钢拱桥有限元模型及其应用
为了严格评估钢桥在车辆疲劳下的健康状况,需要一个详细的数值模型和有效的疲劳分析方法。本文介绍了一座大型异形钢拱桥的结构健康监测有限元模型的建立和车辆疲劳损伤评估过程。首先,使用多个FE对桥梁进行精心建模,以便于探索局部结构行为。其次,根据在桥梁位置测量的模态参数进行手动调谐和模型更新。由于数值模型包括大量的FE,因此采用了两种基于代理模型的方法来更新模型。第三,通过使用所建立的模型来预测整个桥梁在静态车辆荷载作用下的结构模态和实际结构行为,对所建立的模式进行了验证。第四,利用数值模型,采用基于高周疲劳损伤累积理论的新疲劳分析方法,进一步分析了车辆对桥梁的疲劳损伤。结果表明,对于具有错误配置的面向SHM的有限元模型,手动调整和模型更新是必不可少的,并且一种基于代理模型的模型更新方法是有效的。此外,基于高周疲劳损伤累积理论的疲劳分析方法适用于实际工程案例。
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来源期刊
Mathematical & Computational Applications
Mathematical & Computational Applications MATHEMATICS, INTERDISCIPLINARY APPLICATIONS-
自引率
10.50%
发文量
86
审稿时长
12 weeks
期刊介绍: Mathematical and Computational Applications (MCA) is devoted to original research in the field of engineering, natural sciences or social sciences where mathematical and/or computational techniques are necessary for solving specific problems. The aim of the journal is to provide a medium by which a wide range of experience can be exchanged among researchers from diverse fields such as engineering (electrical, mechanical, civil, industrial, aeronautical, nuclear etc.), natural sciences (physics, mathematics, chemistry, biology etc.) or social sciences (administrative sciences, economics, political sciences etc.). The papers may be theoretical where mathematics is used in a nontrivial way or computational or combination of both. Each paper submitted will be reviewed and only papers of highest quality that contain original ideas and research will be published. Papers containing only experimental techniques and abstract mathematics without any sign of application are discouraged.
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