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A novel convolutional network with a self-adaptation high-pass filter for fault diagnosis of wind turbine gearboxes

Fan Yang, Donghua Huang, Dongdong Li, Yao Zhao, Shunfu Lin, S. M. Muyeen

2022Measurement Science and Technology15 citationsDOIOpen Access PDF

Abstract

Abstract The fault diagnosis of a wind turbine gearbox is helpful for reducing the operating costs and risks of wind power systems. However, existing machine-learning-based gearbox fault diagnosis methods have two shortcomings: (a) data samples of gearbox faults are always scarce; and (b) due to the complex structure of gearboxes, the collected vibration signals often contain a large amount of low-frequency noise, which is detrimental to both feature extraction and fault diagnosis. To solve the above two problems, a combination of deep convolutional generative adversarial networks (DCGANs) and a convolutional network with a high-pass filter (CNHF) is proposed in this paper. Among them, the DCGAN combined with one-dimensional (1D) vibration data converted to a grayscale map is used to expand the fault data to solve the problem of a lack of fault data samples. The CNHF is realized by adding an adaptive high-pass filter to the conventional convolutional layer, and the threshold of the high-pass filter is adaptively set by the 1D convolution according to different data characteristics, thus greatly filtering out the interference of low-frequency noise and realizing the accurate diagnosis of faults. Experiments are performed on a drivetrain dynamics simulator rig to verify the efficacy of the proposed method.

Topics & Concepts

Computer scienceFault (geology)Filter (signal processing)Noise (video)TurbineConvolutional neural networkControl theory (sociology)Convolution (computer science)Interference (communication)Feature extractionArtificial intelligencePattern recognition (psychology)Artificial neural networkComputer visionEngineeringTelecommunicationsMechanical engineeringChannel (broadcasting)GeologyControl (management)SeismologyImage (mathematics)Machine Fault Diagnosis TechniquesGear and Bearing Dynamics AnalysisMechanical Failure Analysis and Simulation
A novel convolutional network with a self-adaptation high-pass filter for fault diagnosis of wind turbine gearboxes | Litcius