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联合高阶同步挤压变换与多窗经验小波变换用于非平稳工况下风力发电机组行星齿轮箱故障诊断

Joint High-Order Synchrosqueezing Transform and Multi-Taper Empirical Wavelet Transform for Fault Diagnosis of Wind Turbine Planetary Gearbox under Nonstationary Conditions.

作者信息

Hu Yue, Tu Xiaotong, Li Fucai, Meng Guang

机构信息

State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China.

出版信息

Sensors (Basel). 2018 Jan 7;18(1):150. doi: 10.3390/s18010150.

Abstract

Wind turbines usually operate under nonstationary conditions, such as wide-range speed fluctuation and time-varying load. Its critical component, the planetary gearbox, is prone to malfunction or failure, which leads to downtime and repair costs. Therefore, fault diagnosis and condition monitoring for the planetary gearbox in wind turbines is a vital research topic. Meanwhile, the signals measured by the vibration sensors mounted in the gearbox exhibit time-varying and nonstationary features. In this study, a novel time-frequency method based on high-order synchrosqueezing transform (SST) and multi-taper empirical wavelet transform (MTEWT) is proposed for the wind turbine planetary gearbox under nonstationary conditions. The high-order SST uses accurate instantaneous frequency approximations to obtain a sharper time-frequency representation (TFR). As the acquired signal consists of many components, like the meshing and rotating components of the gear and bearing, the fault component may be masked by other unrelated components. The MTEWT is used to separate the fault feature from the masking components. A variety of experimental signals of the wind turbine planetary gearbox under nonstationary conditions have been analyzed to demonstrate the effectiveness and robustness of the proposed method. Results show that the proposed method is effective in diagnosing both gear and bearing faults.

摘要

风力涡轮机通常在非平稳条件下运行,例如大范围的速度波动和时变负载。其关键部件行星齿轮箱容易出现故障或失效,这会导致停机时间和维修成本。因此,风力涡轮机行星齿轮箱的故障诊断和状态监测是一个至关重要的研究课题。同时,安装在齿轮箱中的振动传感器所测量的信号呈现出时变和非平稳的特征。在本研究中,针对非平稳条件下的风力涡轮机行星齿轮箱,提出了一种基于高阶同步挤压变换(SST)和多窗经验小波变换(MTEWT)的新型时频方法。高阶SST使用精确的瞬时频率近似来获得更清晰的时频表示(TFR)。由于采集到的信号由许多成分组成,如齿轮和轴承的啮合和旋转成分,故障成分可能会被其他无关成分掩盖。MTEWT用于从掩盖成分中分离出故障特征。对非平稳条件下风力涡轮机行星齿轮箱的各种实验信号进行了分析,以证明所提方法的有效性和鲁棒性。结果表明,所提方法在诊断齿轮和轴承故障方面均有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/611d/5795751/4aeb3d62a309/sensors-18-00150-g001.jpg

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