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作 者:Mang Gao Gang Yu Changning Li
机构地区:[1]School of Mechanical Engineering and Automation,Harbin Institute of Technology,Shenzhen 518055,China [2]School of Electronic and Information Engineering,Suzhou University of Science and Technology,Suzhou 215009,China
出 处:《Chinese Journal of Mechanical Engineering》2022年第1期156-178,共23页中国机械工程学报(英文版)
基 金:Supported by Shenzhen Fundamental Research (Grant No. JCYJ20190806144401666)。
摘 要:Adaptive wavelet filtering is a very important fault feature extraction method in the domain of condition monitoring;however, owing to the time-consuming computation and difficulty of choosing criteria used to represent incipient faults, the engineering applications are limited to some extent. To detect incipient gear faults at a fast speed, a new criterion is proposed to optimize the parameters of the modified impulsive wavelet for constructing an optimal wavelet filter to detect impulsive gear faults. First, a new criterion based on spectral negentropy is proposed. Then, a novel search strategy is applied to optimize the parameters of the impulsive wavelet based on the new criterion. Finally,envelope spectral analysis is applied to determine the incipient fault characteristic frequency. Both the simulation and experimental validation demonstrated the superiority of the proposed approach.
关 键 词:Incipient fault diagnosis NEGENTROPY Spectral kurtosis GEAR Adaptive wavelet
分 类 号:TN713[电子电信—电路与系统] TH132.41[机械工程—机械制造及自动化]
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