基于频谱形状的滚动轴承故障检测

M. Orkisz, A. Szewczuk
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引用次数: 2

摘要

本文描述了滚动轴承自动故障检测的数值方法组合,即使对被检轴承及其特征频率的了解有限。该方法采用多种滚动轴承诊断方法,这些方法同时工作,相互补充。这些包括著名的希尔伯特包络,数字和连续小波变换,傅里叶变换和模糊逻辑。提出了几种启发式技术,如外包络滤波、脉冲序列扫描和频谱形状分析。结合使用不同技术获得的部分结果,可以估计不同类型故障(外圈、内圈和滚子)的概率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spectrum shape based roller bearing fault detection
This paper describes a combination of numerical methods of automated fault detection in rolling bearings, even when there is a limited knowledge about inspected bearings and their characteristic frequencies in particular. This approach approaches the problem using several rolling bearing diagnostic methods which work simultaneously and complement each other. These include the well-known Hilbert-based envelope, Digital and Continuous Wavelet Transforms, Fourier Transform and Fuzzy Logic. Several heuristic techniques are proposed, such as Outer Envelope Filtering, Pulse Train Scanning and Spectrum Shape Analysis. Combination of partial results obtained by using different techniques allows for estimating the probabilities of different fault types (outer-race, inner-race and roller).
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