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A time–frequency analysis approach for condition monitoring of a wind turbine gearbox under varying load conditions

机译:一种用于风力涡轮机变速箱在变负荷条件下状态监测的时频分析方法

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摘要

This paper deals with the condition monitoring of wind turbine gearboxes under varying operating conditions. Generally, gearbox systems include nonlinearities so a simplified nonlinear gear model is developed, on which the time–frequency analysis method proposed is first applied for the easiest understanding of the challenges faced. The effect of varying loads is examined in the simulations and later on in real wind turbine gearbox experimental data. The Empirical Mode Decomposition (EMD) method is used to decompose the vibration signals into meaningful signal components associated with specific frequency bands of the signal. The mode mixing problem of the EMD is examined in the simulation part and the results in that part of the paper suggest that further research might be of interest in condition monitoring terms. For the amplitude–frequency demodulation of the signal components produced, the Hilbert Transform (HT) is used as a standard method. In addition, the Teager–Kaiser energy operator (TKEO), combined with an energy separation algorithm, is a recent alternative method, the performance of which is tested in the paper too. The results show that the TKEO approach is a promising alternative to the HT, since it can improve the estimation of the instantaneous spectral characteristics of the vibration data under certain conditions.
机译:本文研究了在变化的运行条件下对风力涡轮机变速箱的状态监控。通常,齿轮箱系统包括非线性,因此开发了简化的非线性齿轮模型,首先将所提出的时频分析方法应用于对所面临挑战的最简单理解。在模拟中检查了变化负载的影响,随后在实际风力涡轮机变速箱实验数据中进行了检查。经验模式分解(EMD)方法用于将振动信号分解为与信号的特定频带关联的有意义的信号分量。在仿真部分检查了EMD的模式混合问题,并且该部分的结果表明,在状态监视方面可能需要进行进一步的研究。对于产生的信号分量的幅度-频率解调,希尔伯特变换(HT)被用作标准方法。此外,Teager-Kaiser能量算子(TKEO)与能量分离算法相结合是一种最新的替代方法,其性能也在本文中进行了测试。结果表明,TKEO方法是HT的有希望的替代方法,因为它可以改善在某些条件下振动数据的瞬时频谱特征的估计。

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