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基于漫游摄像机技术的桥梁损伤检测方法。

Bridge Damage Detection Approach Using a Roving Camera Technique.

机构信息

School of Natural and Built Environment, Queen's University Belfast, Belfast BT7 1NN, UK.

Department of Civil Engineering, University of Twente, Drienerlolaan 5, 7522 NB Enschede, The Netherlands.

出版信息

Sensors (Basel). 2021 Feb 10;21(4):1246. doi: 10.3390/s21041246.

Abstract

Increasing extreme climate events, intensifying traffic patterns and long-term underinvestment have led to the escalated deterioration of bridges within our road and rail transport networks. Structural Health Monitoring (SHM) systems provide a means of objectively capturing and quantifying deterioration under operational conditions. Computer vision technology has gained considerable attention in the field of SHM due to its ability to obtain displacement data using non-contact methods at long distances. Additionally, it provides a low cost, rapid instrumentation solution with low interference to the normal operation of structures. However, even in the case of a medium span bridge, the need for many cameras to capture the global response can be cost-prohibitive. This research proposes a roving camera technique to capture a complete derivation of the response of a laboratory model bridge under live loading, in order to identify bridge damage. Displacement is identified as a suitable damage indicator, and two methods are used to assess the magnitude of the change in global displacement under changing boundary conditions in the laboratory bridge model. From this study, it is established that either approach could detect damage in the simulation model, providing an SHM solution that negates the requirement for complex sensor installations.

摘要

日益增多的极端气候事件、日益繁忙的交通模式和长期投资不足,导致我们道路和铁路运输网络中的桥梁恶化加剧。结构健康监测 (SHM) 系统提供了一种在运行条件下客观捕捉和量化劣化的方法。由于计算机视觉技术能够使用非接触方法远距离获取位移数据,因此在 SHM 领域引起了相当大的关注。此外,它还提供了一种低成本、快速的仪器解决方案,对结构的正常运行干扰较小。然而,即使是在中等跨度桥梁的情况下,为了捕捉全局响应,需要许多相机来捕捉,这可能会非常昂贵。本研究提出了一种游动相机技术,用于在活载下捕获实验室模型桥梁的完整响应,以识别桥梁损坏。位移被确定为合适的损伤指标,并且使用两种方法来评估实验室桥梁模型中在不断变化的边界条件下全局位移变化的幅度。从这项研究中可以确定,这两种方法都可以在模拟模型中检测到损伤,为 SHM 解决方案提供了一种无需复杂传感器安装的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7953/7916380/8651847be94f/sensors-21-01246-g001.jpg

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