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Statistical damage identification for bridges using ambient vibration data

机译:使用环境振动数据对桥梁进行统计损伤识别

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摘要

The inherent uncertainties in experimental data have been recognized as one of the main barriers against the application of vibration-based damage identification techniques on real-life bridges. A statistical damage identification procedure for bridge health monitoring is presented in this paper. It is assumed that the structure, in both healthy and unknown conditions, is monitored and the dynamic responses under ambient excitations are available. The damage identification procedure runs following a 4-step scheme including (1) data sample formation, (2) data normalization, (3) damage feature extraction, and (4) statistical damage evaluation. A hierarchical sequence matching scheme is suggested for data normalization to account for the effects of various environmental and operational conditions on the structural dynamics. The damage feature extraction technique based on time series analysis combining auto-regressive and auto-regressive with exogenous inputs prediction models is adopted. A statistical index based on the damage features that are derived from a large number of data samples is proposed for novelty detection and damage localization. The effectiveness and robustness of the proposed procedure is demonstrated by numerical simulations performed on a three-span continuous girder bridge with reasonable damage severity.
机译:实验数据固有的不确定性已被认为是在实际桥梁上应用基于振动的损伤识别技术的主要障碍之一。本文提出了一种用于桥梁健康监测的统计损伤识别程序。假设在健康和未知条件下都可以监视结构,并且可以得到在环境激发下的动态响应。损害识别过程遵循4个步骤,包括(1)数据样本形成,(2)数据归一化,(3)损害特征提取和(4)统计损害评估。建议使用分层序列匹配方案进行数据归一化,以考虑各种环境和操作条件对结构动力学的影响。采用基于时间序列分析的损伤特征提取技术,该模型结合了自回归和自回归与外源输入预测模型。提出了基于从大量数据样本中得出的破坏特征的统计指标,用于新颖性检测和破坏定位。通过在具有合理损伤严重程度的三跨连续梁桥上进行的数值模拟,证明了所提出程序的有效性和鲁棒性。

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