Feature Extraction Technique for Fault Prognosis Based on Fault Trend Analysis

被引:1
作者
谭晓栋 [1 ]
张勇 [2 ]
邱静 [2 ]
王超 [2 ]
机构
[1] Equipment Reliability,Prognostics and Health Management Laboratory,School of Mechatronics Engineering,University of Electronic Science and Technology
[2] Laboratory of Science and Technology on Integrated Logistics Support,College of Mechatronics and Automation,National University of Defense Technology
关键词
fault prognosis; feature extraction; fault trend analysis;
D O I
10.19884/j.1672-5220.2017.06.014
中图分类号
TH133.3 [轴承];
学科分类号
080203 ;
摘要
Fault prognosis is one of the key techniques for prognosis and health management,and an effective fault feature can improve prediction accuracy and performance. A novel approach of feature extraction for fault prognosis based on fault trend analysis was proposed in this paper. In order to describe the ability of tracking fault growth process,definitions and calculations of fault trackability was developed, and the feature which had the maximum fault trackability was selected for fault prognosis. The vibration data in bearing life tests were used to verify the effectiveness of the method was proposed. The results showed that the trackability of energy entropy for bearing fault growth was the maximum,and it was the best fault feature among selected features root mean square( RMS),kurtosis,new moment and energy entropy. The proposed approach can provide a better strategy for fault feature extraction of bearings in order to improve prediction accuracy.
引用
收藏
页码:784 / 787
页数:4
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