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Real-time damage detection based on pattern recognition

机译:基于模式识别的实时损伤检测

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摘要

Structural health monitoring (SHM) can be defined as the process of developing and implementing structural damage detection strategies. Ideally, this detection should be carried out in real time before damage reaches a critical state and impairs structural performance and safety. Hence, it must be based on sensorial systems permanently installed on the target structures and on fully automatic detection methodologies. The ability to detect damage in real-time is vital for controlling the safety of old structures or for post-retrofitting/post-accident situations, where it might even be mandatory for ensuring a safe service. Under these constraints, SHM systems and strategies must be capable of conducting baseline-free damage identification, i.e. they must not rely on comparing newly acquired data with baseline references in which structures must be assumed as undamaged. The present paper describes an original strategy for baseline-free damage detection based on the application of artificial neural networks and clustering methods in a moving windows process. The proposed strategy was tested on and validated with numerical and experimental data obtained from a concrete cable stayed bridge and proved effective for the automatic detection of small stiffness reductions in single stay cables as well as the detachment of neoprene pads in anchoring devices, requiring only a small number of inexpensive sensors.
机译:结构健康监测(SHM)可以定义为开发和实施结构损伤检测策略的过程。理想情况下,应在损坏达到临界状态并损害结构性能和安全性之前实时进行检测。因此,它必须基于永久安装在目标结构上的传感系统以及全自动检测方法。实时检测损坏的能力对于控制旧结构的安全性或在改造后/事故后的情况下至关重要,在确保安全服务的情况下,甚至可能必须强制执行此任务。在这些约束下,SHM系统和策略必须能够进行无基准线的损伤识别,即它们不得依赖于将新获取的数据与基准基准进行比较,在基准基准中必须假定结构未损坏。本文介绍了一种原始的无基线损伤检测策略,该方法基于人工神经网络和聚类方法在移动窗口过程中的应用。从混凝土斜拉桥获得的数值和实验数据对所提出的策略进行了测试并得到了验证,并被证明对于自动检测单斜拉索的小刚度减小以及锚固装置中氯丁橡胶垫的分离是有效的。少量廉价传感器。

著录项

  • 来源
    《Structural concrete》 |2016年第3期|338-354|共17页
  • 作者单位

    LNEC Portuguese Natl Lab Civil Engn, Struct Dept, Ave Brasil 101, P-1700066 Lisbon, Portugal;

    Bouygues Travaux Publ, Tech Div, 1 Ave Eugene Freyssinet, F-78280 Guyancourt, France|CEREMA, Tech Ctr Bridge Engn, Tech Dept Transportat Infrastruct & Mat, 110 Rue Paris,BP 214, F-77487 Provins, France;

    LNEC Portuguese Natl Lab Civil Engn, Struct Dept, Ave Brasil 101, P-1700066 Lisbon, Portugal;

    Univ Lisbon, Inst Super Tecn, Ave Rovisco Pais, P-1049001 Lisbon, Portugal;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    bridges; pattern recognition; damage detection;

    机译:桥梁;模式识别;损伤检测;

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