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Temperature-based structural health monitoring baseline for long-span bridges

机译:大跨度桥梁基于温度的结构健康监测基线

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A core prerequisite of an effective structural health monitoring (SHM) system is the development and characterization of a baseline response that is sensitive to meaningful changes in the structural system, and insensitive to normal operational changes. Such a baseline allows the use of detected changes to drive proactive maintenance and preservation interventions, or more refined assessment approaches, to ensure the on-going safety, serviceability, and durability of the structure. The approach developed as part of this research utilizes the relationship between temperature changes and the resulting strains and displacements of the structure to create a unique numerical and graphical baseline within an SHM framework. Evaluation of the method was performed through benchmark studies along with long-term monitoring data from a long-span steel tied arch bridge. The benchmark studies and field measurements illustrate that the nonlinear relationship between temperature, local mechanical strains, and global displacements results in a near-flat surface when plotted in 3D space. The bounds and the orientation (angle) of these surfaces are unique for each location and insensitive to normal operational changes in behavior. More importantly, a numerical sensitivity study was performed which indicated the surfaces are sensitive to a series of realistic scenarios which would result in meaningful changes in the performance of the structure. In addition, a comparison with a vibration-based SHM approach was also carried out, and the results indicated that the temperature-based approach was more sensitive for the scenarios examined.
机译:有效的结构健康监测(SHM)系统的核心前提是对基础响应的开发和表征,该响应对结构系统中的有意义的变化敏感,而对正常的操作变化不敏感。这样的基准允许使用检测到的更改来驱动主动的维护和保存干预措施,或者采用更完善的评估方法,以确保结构的持续安全性,可维护性和耐用性。作为这项研究的一部分开发的方法利用温度变化与结构的应变和位移之间的关系在SHM框架内创建唯一的数字和图形基线。通过基准研究以及大跨度钢拱桥的长期监测数据对方法进行了评估。基准研究和现场测量表明,在3D空间中绘制时,温度,局部机械应变和整体位移之间的非线性关系导致表面接近平坦。这些表面的边界和方向(角度)对于每个位置都是唯一的,并且对行为的正常操作变化不敏感。更重要的是,进行了数值敏感性研究,该研究表明表面对一系列现实情况敏感,这将导致结构性能发生有意义的变化。此外,还与基于振动的SHM方法进行了比较,结果表明基于温度的方法对所检查的场景更加敏感。

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