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Early fault detection in automotive ball bearings using the minimum variance cepstrum

机译:使用最小方差倒谱的汽车球轴承的早期故障检测

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摘要

Ball bearings in automotive wheels play an important role in a vehicle. They enable an automobile to run and simultaneously support the vehicle. Once faults are generated, even if they are small, they often grow fast even under normal driving condition and cause vibration and noise. Therefore, it is critical to detect faults as early as possible to prevent bearings from generating harsh noise and vibration. How early faults can be detected is associated with how well a detecting method finds the information of early faults from measured signal. Incipient faults are so small that the fault signal is inherently buried by noise. Minimum variance cepstrum (MVC) has been introduced for the observation of periodic impulse signal under noisy environments. We are particularly focusing on the definition of MVC that goes back to the original definition by Bogert et al. in comparison with the recently prevalent definition of cepstral analysis. In this work, the MVC is, therefore, obtained by liftering a logarithmic power spectrum, and the lifter bank is designed by the minimum variance algorithm. Furthermore, it is also shown how efficient the method is for detecting periodic fault signal made by early faults by using automotive ball bearings, with which an automobile is equipped under running conditions. We were able to detect incipient faults in 4 out of 12 normal bearings which passed acceptance test as well as in bearings that were recalled due to noise and vibration. In addition, we compared the results of the proposed method with results obtained using other older well-established early fault detection methods that were chosen from 4 groups of methods which were classified by the domain of observation. The results demonstrated that MVC determined bearing fault periods more clearly than other methods under the given condition.
机译:汽车车轮中的滚珠轴承在车辆中起着重要的作用。它们使汽车能够行驶并同时支撑车辆。一旦产生故障,即使故障很小,即使在正常的驾驶条件下,故障通常也会迅速增长,并引起振动和噪音。因此,至关重要的是尽早检测故障,以防止轴承产生刺耳的噪音和振动。如何检测早期故障与检测方法从被测信号中发现早期故障的信息的程度有关。初始故障非常小,以至于故障信号固有地被噪声掩埋。引入了最小方差倒谱(MVC)来观察嘈杂环境下的周期性脉冲信号。我们特别关注MVC的定义,该定义可追溯到Bogert等人的原始定义。与最近流行的倒谱分析定义相比。因此,在这项工作中,通过提升对数功率谱来获得MVC,并且通过最小方差算法设计提升器组。此外,还示出了通过使用汽车滚珠轴承来检测由早期故障产生的周期性故障信号的方法的效率,该汽车滚珠轴承在运行条件下装备有汽车。我们能够检测出通过验收测试的12个普通轴承中的4个以及由于噪声和振动而召回的轴承中的4个出现的早期故障。此外,我们将建议方法的结果与使用其他较早建立的早期故障检测方法(从4组方法中选择)进行了比较,这些方法根据观察领域进行了分类。结果表明,在给定条件下,MVC比其他方法更清楚地确定了轴承的故障周期。

著录项

  • 来源
    《Mechanical systems and signal processing》 |2013年第2期|534-548|共15页
  • 作者单位

    Center for safety measurements, Division of metrology for quality of life, Korea Research Institute of Standards and Science (KRISS), 267 Gajeon-ro, Yuseong-gu, Daejeon, Republic of Korea;

    Radioactive Waste Disposal Research Division, Korea Atomic Energy Research Institute (KAERI), 150 Duckjin-dong, Yuseong-gu, Daejeon, Republic of Korea;

    Center for Noise and Vibration Control (NOVIC), Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), Republic of Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Early fault detection; Automotive ball bearings; Minimum variance cepstrum;

    机译:早期故障检测;汽车球轴承;最小方差倒谱;

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