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基于MOMEDA和增强倒频谱的风电机组齿轮箱多故障诊断方法
引用本文:胡爱军,严家祥,白泽瑞. 基于MOMEDA和增强倒频谱的风电机组齿轮箱多故障诊断方法[J]. 振动与冲击, 2021, 0(7): 268-273
作者姓名:胡爱军  严家祥  白泽瑞
作者单位:华北电力大学机械工程系
基金项目:国家自然科学基金(51675178)。
摘    要:风电机组齿轮箱结构复杂,当齿轮、轴承存在多故障时,由于各故障强弱不同、故障间相互耦合及噪声干扰,造成故障诊断准确率低及漏诊问题.提出了一种基于多点最优最小熵解卷积(multipoint optimal minimum entropy deconvolution adjusted,MOMEDA)和增强倒频谱的风电机组齿轮...

关 键 词:齿轮箱  多故障诊断  特征提取  多点最优最小熵解卷积(MOMEDA)  增强倒频谱

Multi-fault diagnosis method for wind turbine gearbox based on MOMEDA and enhanced cepstrum
HU Aijun,YAN Jiaxiang,BAI Zerui. Multi-fault diagnosis method for wind turbine gearbox based on MOMEDA and enhanced cepstrum[J]. Journal of Vibration and Shock, 2021, 0(7): 268-273
Authors:HU Aijun  YAN Jiaxiang  BAI Zerui
Affiliation:(Department of Mechanical Engineering,North China Electric Power University,Baoding 071003,China)
Abstract:The structure of wind turbine gearbox is complex.When there are many faults in gear and bearing,fault diagnosis accuracy is low and some faults’diagnosis is missed due to different fault intensities,mutual coupling between faults and noise interference.A multi-fault diagnosis method for wind turbine gearbox based on multi-point optimal minimum entropy deconvolution adjusted(MOMEDA)and enhanced cepstrum was proposed.Firstly,fault characteristic frequencies of different positions of gear and bearing were used to set reasonable deconvolution period,and the original signal was preprocessed by using MOMEDA.Then,enhanced cepstrum was used to further suppress noise interference and enhance fault features.Finally,prominent components in enhanced cepstrum were compared with fault characteristic frequencies of gearbox to determine the fault type.The analysis results of multi-fault vibration test data of actual wind turbine gearbox showed that the proposed method can effectively extract multi-fault feature information of gearbox.
Keywords:gearbox  multi-fault diagnosis  feature extraction  multipoint optimal minimum entropy deconvolution adjusted(MOMEDA)  enhanced cepstrum
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