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System identification of an in-service railroad bridge using wireless smart sensors

机译:使用无线智能传感器的在役铁路桥梁的系统识别

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Railroad bridges form an integral part of railway infrastructure throughout the world. To accommodate increased axel loads, train speeds, and greater volumes of freight traffic, in the presence of changing structural conditions, the load carrying capacity and serviceability of existing bridges must be assessed. One way is through system identification of in-service railroad bridges. To dates, numerous researchers have reported system identification studies with a large portion of their applications being highway bridges. Moreover, most of those models are calibrated at global level, while only a few studies applications have used globally and locally calibrated model. To reach the global and local calibration, both ambient vibration tests and controlled tests need to be performed. Thus, an approach for system identification of a railroad bridge that can be used to assess the bridge in global and local sense is needed. This study presents system identification of a railroad bridge using free vibration data. Wireless smart sensors are employed and provided a portable way to collect data that is then used to determine bridge frequencies and mode shapes. Subsequently, a calibrated finite element model of the bridge provides global and local information of the bridge. The ability of the model to simulate local responses is validated by comparing predicted and measured strain in one of the diagonal members of the truss. This research demonstrates the potential of using measured field data to perform model calibration in a simple and practical manner that will lead to better understanding the state of railroad bridges.
机译:铁路桥梁是全世界铁路基础设施的组成部分。为了适应不断增加的轴荷,火车速度和更大的货运量,在结构条件不断变化的情况下,必须评估现有桥梁的承载能力和可维修性。一种方法是通过在役铁路桥梁的系统识别。迄今为止,许多研究人员已经报告了系统识别研究,其中很大一部分是高速公路桥梁。此外,这些模型中的大多数都是在全局级别上校准的,而只有少数研究应用程序使用了全局和本地校准的模型。为了达到全局和局部校准,需要执行环境振动测试和受控测试。因此,需要一种用于铁路桥梁的系统识别的方法,该方法可用于在全局和局部意义上评估桥梁。这项研究提出了使用自由振动数据的铁路桥梁系统识别。采用了无线智能传感器,并提供了一种便携式方式来收集数据,然后将其用于确定电桥频率和模式形状。随后,桥梁的校准有限元模型提供了桥梁的全局和局部信息。通过比较桁架对角线构件之一中的预测应变和测量应变,可以验证模型模拟局部响应的能力。这项研究证明了使用实测数据以简单实用的方式进行模型校准的潜力,这将有助于更好地了解铁路桥梁的状态。

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