Rolling bearings are indispensable parts in mechanical equipment, and predicting their remaining useful life is critical to normal operation and keep equipment in good repair. However, the complex characteristics of bearings make it difficult to describe their degradation characteristics. To address this issue, a novel method that combines an automatic feature combination extraction mechanism with a gated recurrent unit (GRU) network that has a residual multi-head attention mechanism for rolling bearing life prediction is proposed. Firstly, the automatic feature combination extraction mechanism is used to learn the degradation representation of the bearing vibration signal in the time domain, frequency domain, and time-frequency joint domain, and automatically extract the optimal bearing degradation feature combination. Then, the GRU network with residual multi-head attention mechanism is developed to weight and distinguish the learned degradation features, thereby improving the network's attention to important bearing degradation features. In the end, the proposed method is validated on the prediction and the health management of systems dataset and compared to other advanced approaches. The experimental results show that the proposed method can effectively capture the complex and dynamic features of rolling bearings and has high accuracy and generalization ability in rolling bearing life prediction.
机构:
China University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and TechnologyChina University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and Technology
Junbi Xiao
Yunhuan Cong
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机构:
China University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and TechnologyChina University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and Technology
Yunhuan Cong
Wenjing Zhang
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机构:
China University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and TechnologyChina University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and Technology
Wenjing Zhang
Wenchao Weng
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机构:
Zhejiang University of Technology,undefinedChina University of Petroleum (East China),Qingdao Institute of Software, College of Computer Science and Technology
机构:
Hubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
State Key Laboratory of Mechanical Transmissions, Chongqing University, ChongqingHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
Chen B.
Guo K.
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机构:
Hubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, YichangHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
Guo K.
Chen F.
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机构:
Hubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
State Key Laboratory of Mechanical Transmissions, Chongqing University, ChongqingHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
Chen F.
Xiao W.
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机构:
Hubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, YichangHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
Xiao W.
Li G.
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机构:
Key Laboratory of Metallurgical Equipment and Control Units, Ministry of Education, Wuhan University of Science and Technology, WuhanHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang
Li G.
Tao B.
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机构:
Key Laboratory of Metallurgical Equipment and Control Units, Ministry of Education, Wuhan University of Science and Technology, WuhanHubei Key Laboratory of Hydroelectic Machinery Design and Maintenance, China Three Gorges University, Hubei, Yichang