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首页> 外文期刊>Instrumentation and Measurement, IEEE Transactions on >Short-Frequency Fourier Transform for Fault Diagnosis of Induction Machines Working in Transient Regime
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Short-Frequency Fourier Transform for Fault Diagnosis of Induction Machines Working in Transient Regime

机译:短时傅立叶变换在异步状态下感应电机故障诊断中的应用

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摘要

Transient-based methods for fault diagnosis of induction machines (IMs) are attracting a rising interest, due to their reliability and ability to adapt to a wide range of IM’s working conditions. These methods compute the time–frequency (TF) distribution of the stator current, where the patterns of the related fault components can be detected. A significant amount of recent proposals in this field have focused on improving the resolution of the TF distributions, allowing a better discrimination and identification of fault harmonic components. Nevertheless, as the resolution improves, computational requirements (power computing and memory) greatly increase, restricting its implementation in low-cost devices for performing on-line fault diagnosis. To address these drawbacks, in this paper, the use of the short-frequency Fourier transform (SFFT) for fault diagnosis of induction machines working under transient regimes is proposed. The SFFT not only keeps the resolution of traditional techniques, such as the short-time Fourier transform, but also achieves a drastic reduction of computing time and memory resources, making this proposal suitable for on-line fault diagnosis. This method is theoretically introduced and experimentally validated using a laboratory test bench.
机译:基于瞬态的感应电机故障诊断方法受到人们的关注,这是因为它们具有可靠性高,能够适应多种IM工作条件的能力。这些方法计算出定子电流的时频(TF)分布,在该分布中可以检测到相关故障分量的模式。该领域中的大量最新建议集中在提高TF分布的分辨率上,从而可以更好地区分和识别故障谐波分量。然而,随着分辨率的提高,计算需求(功率计算和内存)大大增加,从而限制了其在用于执行在线故障诊断的低成本设备中的实现。为了解决这些缺点,在本文中,提出了将短频傅里叶变换(SFFT)用于在瞬态状态下工作的感应电机的故障诊断。 SFFT不仅保持了诸如短时傅立叶变换等传统技术的分辨率,而且还大大减少了计算时间和存储资源,使该建议适用于在线故障诊断。该方法从理论上引入,并使用实验室测试台进行了实验验证。

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