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Data-driven approaches for measurement interpretation: analysing integrated thermal and vehicular response in bridge structural health monitoring

机译:数据驱动的测量解释方法:分析桥梁结构健康监测中的综合热响应和车辆响应

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摘要

AbstractA comprehensive evaluation of a structure’s performance based on quasi-static measurements requires consideration of the response due to all applied loads. For the majority of short- and medium-span bridges, temperature and vehicular loads are the main drivers of structural deformations. This paper therefore evaluates the following two hypotheses: (i) knowledge of loads and their positions, and temperature distributions can be used to accurately predict structural response, and (ii) the difference between predicted and measured response at various sensor locations can form the basis of anomaly detection techniques. It introduces a measurement interpretation approach that merges the regression-based thermal response prediction methodology that was proposed previously by the authors with a novel methodology for predicting traffic-induced response. The approach first removes both environmentally (temperature) and operationally (traffic) induced trends from measurement time series of structural response. The resulting time series is then analysed using anomaly detection techniques. Experimental data collected from a laboratory truss is used for the evaluation of this approach. Results show that (i) traffic-induced response is recognized once thermal effects are removed, and (ii) information of the location and weight of a vehicle can be used to generate regression models that predict traffic-induced response. Asa whole, the approach is shown to be capable of detecting damage by analysing measurements that include both vehicular and thermal response.
机译: 摘要 基于准静态测量对结构性能进行全面评估需要考虑所有施加的载荷引起的响应。对于大多数短跨度和中跨桥梁,温度和车辆载荷是结构变形的主要驱动力。因此,本文评估了以下两个假设:(i)载荷及其位置和温度分布的知识可用于准确预测结构响应,并且(ii)在各个传感器位置的预测响应与实测响应之间的差异可作为基础异常检测技术。它引入了一种测量解释方法,该方法将作者先前提出的基于回归的热响应预测方法与一种用于预测交通诱导响应的新颖方法相融合。该方法首先从结构响应的测量时间序列中消除了环境(温度)和操作(交通)引起的趋势。然后使用异常检测技术分析所得的时间序列。从实验室桁架收集的实验数据用于评估此方法。结果表明,(i)一旦消除了热效应,就会识别出交通诱导的响应,并且(ii)车辆位置和重量的信息可用于生成预测交通诱导响应的回归模型。总体而言,该方法通过分析包括车辆响应和热响应在内的测量值,能够检测出损坏。

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