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Wave Method for Structural Health Monitoring: Testing Using Full-Scale Shake Table Experiment Data

机译:结构健康监测的波动方法:使用完整的振动台实验数据进行测试

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摘要

An algorithm of the wave method for structural health monitoring (SHM) is tested and calibrated using shake table experiment data of a full-scale, seven-story, reinforced-concrete building slice. The method is based on monitoring changes in the velocity of waves propagating vertically through the structure, identified by least-squares (LSQ) fit of beam models. The experiment was conducted by a team from the University of California, San Diego (UCSD) on the Network for Earthquake Engineering Simulations (NEES) outdoor shake table. Ambient noise, white noise, and earthquake response data for four progressive damage states were analyzed. The algorithm is tested for the first time on highly dispersive wave propagation, on a damaged structure, and on much shorter segments of ambient vibration data than used previously. The structure is modeled as a Timoshenko beam with large shear stiffness, and its compressional wave velocity, cL, is identified. The change in cL is measured for the different damage states and is compared with the change of the fundamental frequency of vibration, f1. The effectiveness of the method is discussed. (C) 2016 American Society of Civil Engineers.
机译:使用全尺寸,七层钢筋混凝土建筑切片的振动台试验数据测试和校准了用于结构健康监测(SHM)的波动法算法。该方法基于监视垂直传播通过结构的波速的变化,该变化由波束模型的最小二乘(LSQ)拟合确定。该实验是由加利福尼亚大学圣地亚哥分校(UCSD)的一个小组在地震工程模拟(NEES)室外振动台网络上进行的。分析了四个渐进式损伤状态的环境噪声,白噪声和地震响应数据。该算法首次在高度色散波传播,损坏的结构以及比以前使用的环境振动数据短得多的片段上进行了测试。该结构被建模为具有大剪切刚度的Timoshenko梁,并确定了其压缩波速度cL。测量不同损伤状态下cL的变化,并将其与基本振动频率f1的变化进行比较。讨论了该方法的有效性。 (C)2016年美国土木工程师学会。

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