Lu Zhiwen, Li Feng, Cao Shancheng, Yuan Rui, Lv Yong
Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan 430081, China.
The Key Laboratory of Metallurgical Equipment and Control of Education Ministry, Wuhan University of Science and Technology, Wuhan 430081, China.
Sensors (Basel). 2022 Aug 16;22(16):6131. doi: 10.3390/s22166131.
A novel output-only crack localization method is proposed for operating rotors based on an enhanced higher-order dynamic mode decomposition (HODMD), in which the nonlinear breathing crack-induced super-harmonic characteristic components from multiple vibration measurement points are simultaneously extracted to compose the corresponding super-harmonic transmissibility damage indexes. Firstly, the theoretical background of the HODMD is briefly reviewed. Secondly, the proposed crack localization method is dedicated which improving the HODMD for multivariate signals by casting the total least square method into standard HODMD and adaptively selecting the order parameter of Koopman approximation by optimizing the super-harmonic frequency vector. In addition, the super-harmonic characteristic components are evaluated and harnessed to derive the damage index based on super-harmonic transmissibility and fractal dimension. Finally, the proposed method is investigated and demonstrated by numerical simulations and experiments. Both numerical and experimental results show that the proposed method is powerful in realizing multi-crack localization for running rotors accurately and robustly in the case of no baseline information on intact rotors. Moreover, the interferences from commonly existing steps and misalignment can also be eliminated.
提出了一种基于增强型高阶动态模式分解(HODMD)的运行转子仅输出裂纹定位新方法,该方法从多个振动测量点同时提取非线性呼吸裂纹引起的超谐波特征分量,以构成相应的超谐波传递率损伤指标。首先,简要回顾了HODMD的理论背景。其次,提出了一种裂纹定位方法,该方法通过将总体最小二乘法引入标准HODMD来改进多元信号的HODMD,并通过优化超谐波频率向量自适应选择库普曼近似的阶数参数。此外,基于超谐波传递率和分形维数对超谐波特征分量进行评估和利用,以推导损伤指标。最后,通过数值模拟和实验对所提方法进行了研究和验证。数值和实验结果均表明,所提方法在无完整转子基线信息的情况下,能够准确、稳健地实现运行转子的多裂纹定位。此外,还可以消除常见的台阶和不对中干扰。