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Synchronous Identification of Damage and Vehicle Load on Simply Supported Bridges Based on Long-Gauge Fiber Bragg Grating Sensors

机译:基于长仪光纤布拉格光栅传感器的简单支撑桥梁损坏和车辆负荷的同步识别

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摘要

Bridge vehicle-load and damage-condition information plays a vital role in the structural analysis and assessment of bridges. This information can be derived from bridge responses (such as displacement, acceleration, and strains). Most existing bridge damage and load identification methods are based on different measurements from both the bridge damage and load subsystems (different sensors and methods) in the literature. Accordingly, more sensors and measuring activities are required; therefore, the costs associated with structural health monitoring tend to rise. This paper proposes a new method for the synchronous identification of damage and vehicle loads on simply supported bridges, which uses just one set of long-gauge fiber Bragg grating (FBG) sensors and reduces the use of sensing devices, sensors, and costs. In the proposed method, the correlations among the peak values of static macrostrain curves, bending stiffness of bridge cross sections, and vehicle loads are established based on the macrostrain influence line theory. A numerical case study of a 30-m simply supported bridge, subject to moving vehicles, is performed to preliminarily validate the effectiveness of the proposed method. In this case, the damage identification error is below 6%, and the load identification error is less than 4%. In addition, a laboratory experiment including a model bridge and car is conducted to further examine the feasibility of this method in engineering practice, and the results show that the model bridge damage and load can be identified synchronously with good accuracies. (C) 2019 American Society of Civil Engineers.
机译:桥式车载和损坏条件信息在桥梁的结构分析和评估中起着至关重要的作用。该信息可以源自桥接响应(例如位移,加速度和菌株)。大多数现有的桥梁损坏和负载识别方法基于文献中的桥梁损坏和负载子系统(不同传感器和方法)的不同测量。因此,需要更多的传感器和测量活动;因此,与结构健康监测相关的成本趋于上升。本文提出了一种新的方法,用于在简单的支撑桥上同步识别损坏和车辆载荷,它仅使用一组长仪光纤布拉格光栅(FBG)传感器,并减少了使用传感器,传感器和成本的使用。在所提出的方法中,基于宏观棘轮影响线理论建立静态宏观曲线曲线曲线峰值,桥横截面的峰值,弯曲刚度和车辆载荷之间的相关性。执行30米的30米的数值案例研究,受到移动车辆的影响,以预先验证所提出的方法的有效性。在这种情况下,损坏识别误差低于6%,负载识别误差小于4%。此外,还进行了一种实验室实验,包括模型桥和汽车,以进一步检查该方法在工程实践中的可行性,结果表明,模型桥梁损坏和负载可以同步地识别良好的精度。 (c)2019年美国土木工程师协会。

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