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A smart sensor-based monitoring system for vibration measurement and bearing fault detection

机译:基于振动传感器的振动测量监控系统,用于振动测量和轴承故障检测

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摘要

Rolling element bearings are commonly used in rotary mechanical and electrical equipment. According to investigation, more than half of rotating machinery defects are related to bearing faults. However, reliable bearing fault detection still remains a challenging task, especially in industrial applications. The objective of this work is to develop a smart sensor-based monitoring system for vibration measurement and bearing fault detection. In this work, a smart sensor data acquisition (DAQ) system is developed for vibration signal measurement. A selective Teager-Huang transform (THT) technique is proposed for bearing fault detection; it is comprised of three processes: Firstly, a denoising filter is used to improve the signal-to-noise ratio; secondly, a correlation function is suggested to choose the most representative intrinsic mode functions (IMFs); and thirdly, a generalized Teager-Huang spectrum method is proposed to process the extracted IMFs for bearing fault detection. The effectiveness of the developed DAQ system and selective THT technique is verified by experimental tests.
机译:滚动元件轴承通常用于旋转机械和电气设备。根据调查,一半以上的旋转机械缺陷与轴承故障有关。然而,可靠的轴承故障检测仍然是一个具有挑战性的任务,特别是在工业应用中。这项工作的目的是开发一种用于振动测量和轴承故障检测的基于智能传感器的监控系统。在这项工作中,开发了一个智能传感器数据采集(DAQ)系统用于振动信号测量。提出了一种用于轴承故障检测的选择性茶叶 - 黄变换(THT)技术;它由三个过程组成:首先,使用去噪过滤器来提高信噪比;其次,建议相关函数来选择最代表性的内在模式功能(IMF);第三,提出了一种广义的Teager-Huang谱法来处理提取的IMF用于轴承故障检测。通过实验测试验证了发育的DAQ系统和选择性THT技术的有效性。

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