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Pattern Recognition Based on Time Series Analysis Using Vibration Data for Structural Health Monitoring in Civil Structures

机译:基于时间序列分析的振动数据模式识别在土木结构健康监测中的应用

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A statistical pattern recognition technique was developed based on the time series analysis to detect cracking in steel reinforced concrete structures using vibration measurements. The technique has been developed for the Sydney Harbour Bridge. The measurements were collected from single and tri-axial accel- erometers, which were integrated into sensor nodes that were developed at the National ICT Australia. The approach is based on two staged Auto-Regressive (AR) and Auto-Regressive with exogenous inputs (ARX) prediction models. The variation between the residual errors obtained from the intact and damaged states were used to define a Damage Index (DI) capable of identifying physical changed which could be due to structural damage. The effect of the severity of damage on the deviation of the AR-ARX model from its in- tact state was also scrutinised. The results of the field trial and the laboratory testing demonstrated the ability of the approach in identifying the presence of cracking and handling large volumes of data in a very efficient manner.
机译:基于时间序列分析开发了一种统计模式识别技术,以使用振动测量来检测钢筋混凝土结构中的裂缝。该技术已为悉尼海港大桥开发。测量是从单轴和三轴加速度计中收集的,这些加速度计已集成到澳大利亚国家信息通信技术局开发的传感器节点中。该方法基于两阶段自回归(AR)和具有外生输入的自回归(ARX)预测模型。从完整状态和损坏状态获得的残留误差之间的差异用于定义损坏指数(DI),该指数能够识别可能由于结构损坏而导致的物理变化。还研究了损害严重程度对AR-ARX模型偏离其完整状态的影响。现场试验和实验室测试的结果证明了该方法能够识别裂纹的存在并以非常有效的方式处理大量数据。

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