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Automated Modal Analysis for Tracking Structural Change during Construction and Operation Phases

机译:自动化模态分析可跟踪施工和运营阶段的结构变化

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摘要

The automated modal analysis (AMA) technique has attracted significant interest over the last few years, because it can track variations in modal parameters and has the potential to detect structural changes. In this paper, an improved density-based spatial clustering of applications with noise (DBSCAN) is introduced to clean the abnormal poles in a stabilization diagram. Moreover, the optimal system model order is also discussed to obtain more stable poles. A numerical simulation and a full-scale experiment of an arch bridge are carried out to validate the effectiveness of the proposed algorithm. Subsequently, the continuous dynamic monitoring system of the bridge and the proposed algorithm are implemented to track the structural changes during the construction phase. Finally, the artificial neural network (ANN) is used to remove the temperature effect on modal frequencies so that a health index can be constructed under operational conditions.
机译:在过去的几年中,自动模态分析(AMA)技术引起了人们极大的兴趣,因为它可以跟踪模态参数的变化并具有检测结构变化的潜力。在本文中,引入了一种改进的基于噪声的基于空间的应用聚类(DBSCAN),以清除稳定图中的异常极点。此外,还讨论了最佳系统模型顺序以获得更稳定的极点。通过对拱桥进行数值模拟和全面试验,验证了所提算法的有效性。随后,实施桥梁的连续动态监控系统和所提出的算法,以跟踪施工阶段的结构变化。最后,人工神经网络(ANN)用于消除温度对模态频率的影响,从而可以在运行条件下构建健康指标。

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