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Identification of moving vehicle forces on bridge structures via moving average Tikhonov regularization

机译:通过移动平均Tikhonov规范化识别桥梁结构上的移动车辆力

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摘要

Traffic-induced moving force identification (MFI) is a typical inverse problem in the field of bridge structural health monitoring. Lots of regularization-based methods have been proposed for MFI. However, the MFI accuracy obtained from the existing methods is low when the moving forces enter into and exit a bridge deck due to low sensitivity of structural responses to the forces at these zones. To overcome this shortcoming, a novel moving average Tikhonov regularization method is proposed for MFI by combining with the moving average concepts. Firstly, the bridge-vehicle interaction moving force is assumed as a discrete finite signal with stable average value (DFS-SAV). Secondly, the reasonable signal feature of DFS-SAV is quantified and introduced for improving the penalty function (||x||(2)(2)) defined in the classical Tikhonov regularization. Then, a feasible two-step strategy is proposed for selecting regularization parameter and balance coefficient defined in the improved penalty function. Finally, both numerical simulations on a simply-supported beam and laboratory experiments on a hollow tube beam are performed for assessing the accuracy and the feasibility of the proposed method. The illustrated results show that the moving forces can be accurately identified with a strong robustness. Some related issues, such as selection of moving window length, effect of different penalty functions, and effect of different car speeds, are discussed as well.
机译:交通诱导的移动力识别(MFI)是桥梁结构健康监测领域的典型逆问题。已为MFI提出了许多基于正规化的方法。然而,由于对这些区域的结构响应的低灵敏度,从现有方法获得的MFI精度是低的。为了克服这种缺点,通过与移动平均概念相结合,为MFI提出了一种新颖的移动平均Tikhonov正规方法。首先,假设桥式车辆交互移动力作为具有稳定平均值(DFS-SAV)的离散有限信号。其次,量化了DFS-SAV的合理信号特征,并引入了改进经典Tikhonov规则化中定义的惩罚函数(|| x ||(2))。然后,提出了一种可行的两步策略,用于选择改进的惩罚功能中定义的正则化参数和平衡系数。最后,执行关于简单地支撑的光束和实验室实验的数值模拟,用于评估所提出的方法的准确性和可行性。所示结果表明,可以用强大的稳健性准确地识别移动力。还讨论了一些相关问题,例如选择移动窗口长度,不同惩罚功能的效果以及不同的汽车速度的效果。

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