Long‐term bridge performance assessment using clustering and Bayesian linear regression for vehicle load and strain mapping model

Xiaonan Zhang, You-liang Ding, Han-wei Zhao, Letian Yi
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引用次数: 3

Abstract

The weigh‐in‐motion (WIM) system and the structural health monitoring (SHM) system have been used as two separate modules playing different roles in bridge operation and providing different information for bridge maintenance. This study proposes a novel bridge safety condition assessment method that utilizes long‐term monitoring data from the WIM system and the SHM system. The method uses the slope of the established vehicle load and vehicle‐induced strain mapping model as the evaluation indicator for bridge condition assessment and early warning by clustering and Bayesian linear regression. The proposed method is verified with the continuous monitoring data of a concrete box girder bridge. The results show that the slope indicator of the mapping model changes with the variation of bridge performance, which is stable and can reflect the bridge state in time. The evaluation method can integrate the WIM system with the SHM system and evaluate the bridge health condition based on the correspondence between the two systems, which can make full use of the data.
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基于聚类和贝叶斯线性回归的车辆荷载和应变映射模型的桥梁长期性能评估
动态称重(WIM)系统和结构健康监测(SHM)系统作为两个独立的模块在桥梁运行中发挥不同的作用,为桥梁维护提供不同的信息。本研究提出了一种新的桥梁安全状态评估方法,该方法利用了WIM系统和SHM系统的长期监测数据。该方法以建立的车辆荷载和车辆诱发应变映射模型的斜率为评价指标,通过聚类和贝叶斯线性回归进行桥梁状态评估和预警。用某混凝土箱梁桥的连续监测数据对该方法进行了验证。结果表明:该映射模型的坡度指标随桥梁性能的变化而变化,其稳定性较好,能及时反映桥梁状态。该评价方法可以将WIM系统与SHM系统相结合,基于两者的对应关系对桥梁健康状况进行评价,可以充分利用数据。
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