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Detecting beam-column connection failures in ASCE Phase II simulated benchmark studies using a two-step Bayesian structural health monitoring approach

机译:使用两步贝叶斯结构健康监测方法检测ASCE II期模拟基准研究中的梁柱连接故障

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This paper uses a two-step probabilistic structural health monitoring approach to analyze the unbraced cases in the Phase II simulated benchmark studies sponsored by the IASC-ASCE Task Group on Structural Health Monitoring. These cases involve damage detection and assessment of beam-column connection failures of the test structure using simulated ambient vibration data that is generated from the benchmark model which has randomly chosen structural parameter values. The two-step approach involves modal identification followed by damage assessment that uses the identified pre- and post-damage modal parameters based on a Bayesian updating methodology. An Expectation-Maximization algorithm is proposed to find the most probable values of the structural parameters. The results of analysis show that the probabilistic approach is able to successfully detect and assess damage locations for the full-sensor and the partial-sensor cases.
机译:本文使用由两步概率进行的结构健康监测方法来分析由IASC-ASCE结构健康监测任务组赞助的第二阶段模拟基准研究中的无用案例。这些情况涉及使用由基准模型生成的模拟环境振动数据进行损坏检测和测试结构的梁柱连接故障评估,基准数据具有随机选择的结构参数值。分为两步的方法涉及模态识别,然后进行损坏评估,该评估使用基于贝叶斯更新方法的已识别损坏前和损坏后的模态参数。提出了一种期望最大化算法来寻找结构参数的最可能值。分析结果表明,概率方法能够成功地检测和评估全传感器和部分传感器情况下的损坏位置。

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