Xu Y F, Kim J S
Department of Mechanical and Materials Engineering, University of Cincinnati, Cincinnati, OH 45221, USA.
Sensors (Basel). 2021 Apr 2;21(7):2453. doi: 10.3390/s21072453.
Curvatures in mode shapes and operating deflection shapes have been extensively studied for vibration-based structural damage identification in recent decades. Curvatures of mode shapes and operating deflection shapes have proved capable of localizing and manifesting local effects of damage on mode shapes and operating deflection shapes in forms of local anomalies. The damage can be inversely identified in the neighborhoods of the anomalies that exist in the curvatures. Meanwhile, propagating flexural waves have also been extensively studied for structural damage identification and proved to be effective, thanks to their high damage-sensitivity and long range of propagation. In this work, a baseline-free structural damage identification method is developed for beam-like structures using curvature waveforms of propagating flexural waves. A multi-resolution local-regression temporal-spatial curvature damage index (TSCDI) is defined in a pointwise manner. A two-dimensional auxiliary TSCDI and a one-dimensional auxiliary damage index are developed to further assist the identification. Two major advantages of the proposed method are: (1) curvature waveforms of propagating flexural waves have relatively high signal-to-noise ratios due to the use of a multi-resolution central finite difference scheme, so that the local effects of the damage can be manifested, and (2) the proposed method does not require quantitative knowledge of a pristine structure associated with a structure to be examined, such as its material properties, waveforms of propagating flexural waves and boundary conditions. Numerical and experimental investigations of the proposed method are conducted on damaged beam-like structures, and the effectiveness of the proposed method is verified by the results of the investigations.
近几十年来,模态形状和运行挠度形状中的曲率已被广泛研究用于基于振动的结构损伤识别。模态形状和运行挠度形状的曲率已被证明能够以局部异常的形式定位和显示损伤对模态形状和运行挠度形状的局部影响。可以在曲率中存在的异常区域附近反向识别损伤。同时,传播弯曲波也已被广泛研究用于结构损伤识别,并因其高损伤敏感性和长传播距离而被证明是有效的。在这项工作中,利用传播弯曲波的曲率波形为梁状结构开发了一种无需基线的结构损伤识别方法。以逐点方式定义了多分辨率局部回归时空曲率损伤指数(TSCDI)。开发了二维辅助TSCDI和一维辅助损伤指数以进一步辅助识别。该方法的两个主要优点是:(1)由于使用了多分辨率中心有限差分方案,传播弯曲波的曲率波形具有相对较高的信噪比,从而可以显示损伤的局部影响;(2)该方法不需要与待检测结构相关的原始结构的定量知识,例如其材料特性、传播弯曲波的波形和边界条件。对受损梁状结构进行了该方法的数值和实验研究,研究结果验证了该方法的有效性。