用于桥梁监测的城市暗光纤分布式声学传感技术

Julie Rodet, Benoit Tauzin, Mohammad Amin Panah, Philippe Guéguen, Destin Nziengui Bâ, Olivier Coutant, Stéphane Brûlé
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引用次数: 0

摘要

应用于电信光纤网络的分布式声学传感(DAS)技术为结构健康监测提供了新的可能性。我们沿着横跨法国里昂大都会区的 24 公里长的光纤提取了五座桥梁的动态响应。根据其特征信号,确定了能够反映结构健康状况的三个物理参数:振动频率、阻尼和模态形状。光纤测量结果与作为参考的测速数据一致。电信光纤记录了桥梁在多个方向上的动态响应,因此可以利用其正交特性重建三维变形模式。频率的时间跟踪通常用于评估结构的完整性,结果表明,自然频率的平均值在白天和黑夜之间呈周期性变化。夜间频率的增加不超过 2%,这可能反映了由于温度下降导致结构整体变硬。电信纤维可以获得结构的变形和阻尼特性,突出桥梁和下层土壤之间的土壤-结构耦合。这项研究表明,利用现有光纤网络,可以通过 DAS 数据评估桥梁动态响应的空间和时间变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Urban dark fiber distributed acoustic sensing for bridge monitoring
Distributed acoustic sensing (DAS) technology applied to telecommunication optical fiber networks offers new possibilities for structural health monitoring. The dynamic responses of five bridges are extracted along a 24-km long optical fiber crossing the Lyon metropolitan area in France. From their characteristics signals, three physical parameters informing on the health of structures have been determined: vibration frequencies, damping and modal shapes. The fiber measurements are in agreement with velocimetric data serving as reference. The telecom optical fiber records the dynamic response of bridges in several directions and thus allows the reconstruction of 3D deformation modes using their orthogonality properties. Time tracking of frequencies, commonly used to assess structural integrity, shows that the average values of natural frequencies vary cyclically between day and night. The increase in frequencies during the night does not exceed 2% and probably reflects an overall stiffening of the structures due to the drop in temperature. The telecom fiber allows to obtain deformation and damping identity of structures, highlighting soil-structure coupling between the bridge and underlying soil. This study shows that it is possible to assess the spatial and temporal variability of bridge dynamic response from DAS data using existing fiber networks.
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