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Basic vibration signal processing for bearing fault detection

机译:用于轴承故障检测的基本振动信号处理

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Faculty in the College of Engineering at the University of Alabama developed a multidisciplinary course in applied spectral analysis that was first offered in 1996. The course is aimed at juniors majoring in electrical, mechanical, industrial, or aerospace engineering. No background in signal processing or Fourier analysis is assumed; the requisite fundamentals are covered early in the course and followed by a series of laboratories in which the fundamental concepts are applied. In this paper, a laboratory module on fault detection in rolling element bearings is presented. This module is one of two laboratory modules focusing on machine condition monitoring applications that were developed for this course. Background on the basic operational characteristics of rolling element bearings is presented, and formulas given for the calculation of the characteristic fault frequencies. The shortcomings of conventional vibration spectral analysis for the detection of bearing faults is examined in the context of a synthetic vibration signal that students generate in MATLAB. This signal shares several key features of vibration signatures measured on bearing housings. Envelope analysis and the connection between bearing fault signatures and amplitude modulation/demodulation is explained. Finally, a graphically driven software utility (a set of MATLAB m-files) is introduced. This software allows students to explore envelope analysis using measured data or the synthetic signal that they generated. The software utility and the material presented in this paper constitute an instructional module on bearing fault detection that can be used as a stand-alone tutorial or incorporated into a course.
机译:阿拉巴马大学工程学院的教师开发了应用光谱分析的多学科课程,该课程于1996年首次开设。该课程面向电气,机械,工业或航空航天工程专业的大三学生。假定没有信号处理或傅立叶分析的背景;在本课程的开始部分将介绍必要的基础知识,然后是一系列应用了基础概念的实验室。本文提出了一种用于滚动轴承故障检测的实验室模块。该模块是针对该课程开发的两个侧重于机器状态监视应用程序的实验室模块之一。介绍了滚动轴承的基本工作特性,并给出了计算特征故障频率的公式。在学生在MATLAB中生成的合成振动信号的背景下,检查了常规振动谱分析在检测轴承故障中的缺点。该信号具有在轴承座上测得的振动信号的几个关键特征。解释了包络分析以及轴承故障特征和振幅调制/解调之间的联系。最后,介绍了图形驱动的软件实用程序(一组MATLAB m文件)。该软件使学生能够使用测量数据或他们生成的合成信号来探索包络分析。本文中介绍的软件实用程序和材料构成了轴承故障检测的指导模块,可以用作独立教程,也可以纳入课程中。

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