Vibration-based structural health monitoring from operational long- gauge fiber optic strain data

E. Reynders, D. Anastasopoulos, G. Roeck
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Abstract

Vibration monitoring from strain data is a promising alternative to acceleration-based monitoring because a dense measurement grid can be achieved at a relatively low cost and because strain mode shapes are more sensitive to local stiffness changes than displacement mode shapes. However, the feasibility of monitoring strain mode shapes of full-scale civil structures, where the operational dynamic strain levels are of very low amplitude and temperature changes can influence the modal characteristics, has remained an open question. The present work provides a proof of concept in which the deck of a steel bowstring railway bridge is instrumented with 80 Fiber-optic Bragg Grating strain sensors, multiplexed in four fibers, that are interrogated with a technique that achieves high accuracy and precision. For more than a year, the natural frequencies and strain mode shapes of 10 modes have been automatically identified from operational strain time histories, with typical root- mean-square values of 0.01 microstrain, on an hourly basis. Furthermore, using these modal data, the influence of temperature fluctuations and that of a retrofitting of the hangers connecting the bridge deck and the bow, which took place during the monitoring period, are extensively investigated. Both have an influence on the overall stiffness of the bridge and therefore they result in clear changes in the natural frequencies. They do not have an influence on the local stiffness and therefore they do not influence the strain mode shapes, except when the retrofitting induces an interaction between previously well-separated modes.
基于运行长径光纤应变数据的振动结构健康监测
基于应变数据的振动监测是基于加速度监测的一种很有前途的替代方案,因为密集的测量网格可以以相对较低的成本实现,而且应变模态振型比位移模态振型对局部刚度变化更敏感。然而,监测全尺寸土木结构应变模态振型的可行性仍然是一个悬而未决的问题,在全尺寸土木结构中,运行动态应变水平的振幅非常低,温度变化会影响模态特性。目前的工作提供了一个概念证明,在钢弓弦铁路桥的桥面上安装了80个光纤布拉格光栅应变传感器,这些传感器在四根光纤中复用,用一种达到高精度和精密度的技术进行检测。一年多来,从工作应变时间历史中自动识别出10种模态的固有频率和应变模态振型,典型的均方根值为0.01微应变,以小时为基础。此外,利用这些模态数据,广泛研究了温度波动的影响,以及在监测期间对连接桥面和艏的吊架进行改造的影响。两者都对桥梁的整体刚度有影响,因此它们会导致固有频率的明显变化。它们对局部刚度没有影响,因此它们不影响应变模态振型,除非当改造引起先前分离良好的模态之间的相互作用时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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