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基于信息熵和概率神经网络的旋转机械故障识别新方法

New Fault Recognition Method for Rotary Machinery Based on Information Entropy and a Probabilistic Neural Network.

作者信息

Jiang Quansheng, Shen Yehu, Li Hua, Xu Fengyu

机构信息

School of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215009, China.

Suzhou Key Laboratory of Precision and Efficient Machining Technology, Suzhou 215009, China.

出版信息

Sensors (Basel). 2018 Jan 24;18(2):337. doi: 10.3390/s18020337.

Abstract

Feature recognition and fault diagnosis plays an important role in equipment safety and stable operation of rotating machinery. In order to cope with the complexity problem of the vibration signal of rotating machinery, a feature fusion model based on information entropy and probabilistic neural network is proposed in this paper. The new method first uses information entropy theory to extract three kinds of characteristics entropy in vibration signals, namely, singular spectrum entropy, power spectrum entropy, and approximate entropy. Then the feature fusion model is constructed to classify and diagnose the fault signals. The proposed approach can combine comprehensive information from different aspects and is more sensitive to the fault features. The experimental results on simulated fault signals verified better performances of our proposed approach. In real two-span rotor data, the fault detection accuracy of the new method is more than 10% higher compared with the methods using three kinds of information entropy separately. The new approach is proved to be an effective fault recognition method for rotating machinery.

摘要

特征识别与故障诊断在旋转机械的设备安全与稳定运行中起着重要作用。为应对旋转机械振动信号的复杂性问题,本文提出了一种基于信息熵和概率神经网络的特征融合模型。该新方法首先利用信息熵理论提取振动信号中的三种特征熵,即奇异谱熵、功率谱熵和近似熵。然后构建特征融合模型对故障信号进行分类和诊断。所提方法能够融合来自不同方面的综合信息,对故障特征更为敏感。对模拟故障信号的实验结果验证了所提方法具有更好的性能。在实际的两跨转子数据中,新方法的故障检测准确率比单独使用三种信息熵的方法高出10%以上。新方法被证明是一种有效的旋转机械故障识别方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1810/5855057/451eaf195074/sensors-18-00337-g001.jpg

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