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基于经验模态分解、样本熵和深度置信网络组合的旋转机械结构故障精确诊断方法。

A Precise Diagnosis Method of Structural Faults of Rotating Machinery based on Combination of Empirical Mode Decomposition, Sample Entropy, and Deep Belief Network.

机构信息

Graduate School of Bioresources, Mie University, 1577 Kurimamachiya-cho, Tsu, Mie 514-8507, Japan.

Jiangsu Key Laboratory of Advanced Food Manufacturing Equipment and Technology, Jiangnan University, Wuxi 214122, China.

出版信息

Sensors (Basel). 2019 Jan 30;19(3):591. doi: 10.3390/s19030591.

Abstract

To precisely diagnose the rotating machinery structural faults, especially structural faults under low rotating speeds, a novel scheme based on combination of empirical mode decomposition (EMD), sample entropy, and deep belief network (DBN) is proposed in this paper. EMD can decompose a signal into several intrinsic mode functions (IMFs) with different signal-to-noise ratios (SNRs) and sample entropy is performed to extract the signals that carry fault information with high SNR. The extracted fault signal is reconstructed into a new vibration signal that will carry abundant fault information. DBN has strong feature extraction and classification performance. It is suitably performed to build the diagnosis model based on the reconstructed signal. The effectiveness of the proposed method is validated by structural faults signal and the comparative experiments (BPNN, CNN, time-domain signal only, frequency-domain signal only). The results show that the diagnosis accuracy of the proposed method is between 99% and 100%, the BPNN is less than 25%, and the CNN is between 70% and 95%, which means the verified, proposed method has a superior performance to diagnose the structural fault.

摘要

为了精确诊断旋转机械的结构故障,特别是在低转速下的结构故障,本文提出了一种基于经验模态分解(EMD)、样本熵和深度置信网络(DBN)相结合的新方案。EMD 可以将信号分解为具有不同信噪比(SNR)的几个固有模态函数(IMF),而样本熵则用于提取具有高 SNR 的携带故障信息的信号。提取的故障信号被重构为新的振动信号,该信号将携带丰富的故障信息。DBN 具有强大的特征提取和分类性能,非常适合基于重构信号构建诊断模型。通过结构故障信号和对比实验(BPNN、CNN、仅时域信号、仅频域信号)验证了所提出方法的有效性。结果表明,所提出方法的诊断准确率在 99%到 100%之间,BPNN 小于 25%,CNN 在 70%到 95%之间,这意味着所验证的、提出的方法在诊断结构故障方面具有优越的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f07/6387396/2dc036280e6d/sensors-19-00591-g001.jpg

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