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Flexibility identification and deflection prediction of a three-span concrete box girder bridge using impacting test data

机译:基于冲击试验数据的三跨混凝土箱梁桥挠性识别与挠度预测

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摘要

Deflection is an important parameter for condition assessment of in-service bridges. However, accurately measuring bridge deflections especially that of long span bridges is still a challenging problem. In this article, field tests including multiple reference impact test (MRIT) and static test were performed on a three-span post-tensioned concrete box girder bridge to study structural deflections. Firstly, a new impacting device, which can generate high-magnitude and wide-frequency-band forces, has been developed and employed to execute the MRIT on the bridge. The output data from MRIT was utilized to estimate structural Frequency Response Function (FRF) and to identify deep-level structural parameters including modal scaling factor and structural flexibility, from which structural deflections under arbitrary. loads were predicted. Field test results have shown that the developed impacting device can produce FRF with much better reciprocity than the FRF estimated from traditional sledge hammer, which demonstrates the superiority of the developed impacting device for bridge excitation and deflection prediction. Secondly, static test was also conducted on the bridge. The developed long gauge Fiber Bragg Grating (LG-FBG) strain sensors were mounted on the bottom of the box girder bridge. The measured long-gauge strains have been adopted to calculate structural deflections through a modified conjugate beam method which has high precision and there is no error accumulation from other span. Finally, data processing strategy was carried out according to the procedure of structural flexibility identification from MRIT data, and the identified flexibility matrix has been used to predict structural deflections by multiplying a static force vector corresponding to the tested truck load. The well agreement between the predicted deflections and the calculated deflections indicates that the proposed methods can be utilized to obtain structural deflections. (C) 2017 Elsevier Ltd. All rights reserved.
机译:挠度是在役桥梁状态评估的重要参数。然而,准确地测量桥梁挠度,特别是大跨度桥梁的挠度,仍然是一个具有挑战性的问题。在本文中,对三跨后张预应力混凝土箱梁桥进行了包括多重参考冲击试验(MRIT)和静态试验的现场试验,以研究结构挠度。首先,已经开发出一种新型的冲击装置,该装置可以产生高强度和宽频带的力,并可以在桥上执行MRIT。来自MRIT的输出数据被用来估计结构频率响应函数(FRF)并识别深层结构参数,包括模态比例因子和结构柔韧性,从中可以任意选择结构挠度。预测负荷。现场测试结果表明,与传统大锤估算的FRF相比,开发的冲击装置可产生的往复性要好得多,这证明了开发的冲击装置在桥梁激励和挠度预测方面的优越性。其次,还对桥梁进行了静态测试。已开发的长规格光纤布拉格光栅(LG-FBG)应变传感器安装在箱形梁桥的底部。采用测量的长应变来通过改进的共轭梁法计算结构挠度,该方法具有很高的精度,并且没有其他跨度的误差累积。最后,根据从MRIT数据进行结构挠性识别的过程,执行了数据处理策略,并且通过将与测试卡车负载相对应的静态力矢量相乘,将识别出的挠性矩阵用于预测结构变形。预测挠度与计算挠度之间的良好一致性表明,所提出的方法可用于获得结构挠度。 (C)2017 Elsevier Ltd.保留所有权利。

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