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基于卷積自編碼神經(jīng)網(wǎng)絡(luò )的航空發(fā)動(dòng)機軸承故障診斷方法研究
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中航西安飛機工業(yè)集團股份有限公司

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Research on aero-engine bearing fault diagnosis method based on convolutional auto-encoding neural network
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    摘要:

    航空發(fā)動(dòng)機軸承早期故障多是由于裂紋、疲勞剝落和保持架損壞造成的,這類(lèi)型的故障在發(fā)動(dòng)機振動(dòng)信號中均會(huì )產(chǎn)生瞬時(shí)的沖擊。但是,在早期故障中,振動(dòng)信號由于夾雜過(guò)多部件耦合激勵,缺陷沖擊信號很難辨識,早期故障診斷十分困難。采用了基于卷積自編碼網(wǎng)絡(luò )的航空發(fā)動(dòng)機軸承早期沖擊故障特征提取方法,通過(guò)分析信號中沖擊成分的周期性,利用卷積自編碼網(wǎng)絡(luò )的平移不變學(xué)習特性,自動(dòng)捕獲信號中的周期成分,將信號分解為由卷積核重構的多個(gè)特征分量,實(shí)現信號特征分量的自學(xué)習,考慮到峭度指標對信號沖擊成分描述的特點(diǎn),使用峭度指標作為最優(yōu)特征分量的選取指標,進(jìn)而實(shí)現早期沖擊故障特征的提取。最后利用仿真數據和軸承數據驗證了該方法的有效性。

    Abstract:

    Early failures of aero-engine bearings are mostly caused by cracks, fatigue spalling and cage damage. These types of failures will produce instantaneous shocks in engine vibration signals. However, in the early faults, the vibration signal is excited by the coupling of too many components, and the defect impact signal is difficult to identify, and the early fault diagnosis is very difficult. This paper proposes a feature extraction method for early impact faults of aero-engine bearings based on convolutional self-encoding networks. By analyzing the periodicity of the impact components in the signal, using the translation invariant learning characteristics of the convolutional autoencoding network, the periodic components in the signal are automatically captured, and the signal is decomposed into multiple characteristic components reconstructed by the convolution kernel to realize the signal characteristics The self-learning of the components takes into account the characteristics of the kurtosis index describing the impact components of the signal, and the kurtosis index is used as the selection index of the optimal feature components to realize the extraction of early impact fault features. Finally, simulation data and bearing data are used to verify the effectiveness of the method.

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肖娜,周孟申.基于卷積自編碼神經(jīng)網(wǎng)絡(luò )的航空發(fā)動(dòng)機軸承故障診斷方法研究計算機測量與控制[J].,2021,29(12):84-88.

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歷史
  • 收稿日期:2021-08-01
  • 最后修改日期:2021-09-06
  • 錄用日期:2021-09-07
  • 在線(xiàn)發(fā)布日期: 2021-12-24
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