Department of Mechanical Engineering, The Hong Kong Polytechnic University, Kowloon, Hong Kong Special Administrative Region.
Department of Mechanical Engineering, The Hong Kong Polytechnic University, Kowloon, Hong Kong Special Administrative Region; The Hong Kong Polytechnic University Shenzhen Research Institute, Shenzhen 518057, PR China.
Ultrasonics. 2018 Aug;88:157-167. doi: 10.1016/j.ultras.2018.03.008. Epub 2018 Mar 17.
To characterize fatigue cracks, in the undersized stage in particular, preferably in a quantitative and precise manner, a two-dimensional (2D) analytical model is developed for interpreting the modulation mechanism of a "breathing" crack on guided ultrasonic waves (GUWs). In conjunction with a modal decomposition method and a variational principle-based algorithm, the model is capable of analytically depicting the propagating and evanescent waves induced owing to the interaction of probing GUWs with a "breathing" crack, and further extracting linear and nonlinear wave features (e.g., reflection, transmission, mode conversion and contact acoustic nonlinearity (CAN)). With the model, a quantitative correlation between CAN embodied in acquired GUWs and crack parameters (e.g., location and severity) is obtained, whereby a set of damage indices is proposed via which the severity of the crack can be evaluated quantitatively. The evaluation, in principle, does not entail a benchmarking process against baseline signals. As validation, the results obtained from the analytical model are compared with those from finite element simulation, showing good consistency. This has demonstrated accuracy of the developed analytical model in interpreting contact crack-induced CAN, and spotlighted its application to quantitative evaluation of fatigue damage.
为了以定量和精确的方式描述小尺寸阶段(尤其是小尺寸阶段)的疲劳裂纹,开发了一个二维(2D)分析模型来解释导波(GUWs)中“呼吸”裂纹的调制机制。该模型结合模态分解方法和基于变分原理的算法,能够对探测 GUWs 与“呼吸”裂纹相互作用引起的传播波和消逝波进行解析描述,并进一步提取线性和非线性波特征(例如,反射、透射、模式转换和接触声非线性(CAN))。通过该模型,可以获得在获取的 GUWs 中体现的 CAN 与裂纹参数(例如位置和严重程度)之间的定量相关性,从而通过一组损伤指标来定量评估裂纹的严重程度。原则上,该评估不需要与基准信号进行基准测试过程。作为验证,将分析模型得到的结果与有限元模拟得到的结果进行了比较,结果显示出良好的一致性。这证明了所开发的分析模型在解释接触裂纹引起的 CAN 方面的准确性,并强调了其在疲劳损伤定量评估中的应用。