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Damage Detection for Structures under Ambient Vibration via Covariance of Covariance Matrix and Consistent Regularization

机译:通过协方差矩阵的协方差和一致的正则化检测环境振动下的结构损伤

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摘要

A consistent regularization technique is adopted for the inverse identification of local damages in a structure under ambient vibration. The consistent regularization method fully makes use of the information from results obtained in previous iteration steps. Some elements are identified as undamaged and others are updated with small incremental steps between iterations. The covariance of covariance matrix which are formed from the auto/cross-correlation function of acceleration responses of a structure under white noise ambient excitation are used for damage detection in this paper. The components of the covariance matrix are proved to be function of the modal parameters (modal frequency, mode shape and damping parameter) of the structure. The number of vibration modes of the structure associated with the components is only limited by the sampling frequency. A simply supported thirty-one bar plane truss structure and a seven-floor frame structure are studied where a multiple damage scenario with different noise levels are identified. Numerical results show that the consistent regularization method combined with covariance of covariance matrix is very effective in improving the results in the inverse problem with ill-condition phenomenon compared with the Tikhonov regularization.
机译:采用一致的正则化技术来逆向识别结构在环境振动下的局部损伤。一致性正则化方法充分利用了先前迭代步骤中获得的结果中的信息。一些元素被标识为未损坏,而其他元素则在迭代之间以较小的增量步长进行更新。本文将由白噪声环境激励下结构加速度响应的自相关/互相关函数形成的协方差矩阵的协方差用于损伤检测。协方差矩阵的分量被证明是结构的模态参数(模态频率,模态形状和阻尼参数)的函数。与组件关联的结构的振动模式数量仅受采样频率限制。研究了简单支撑的31杆平面桁架结构和7层框架结构,其中确定了具有不同噪声水平的多重破坏场景。数值结果表明,与Tikhonov正则化方法相比,将一致正则化方法与协方差矩阵的协方差相结合可有效改善病态现象反问题的结果。

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