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An Automated method for the analysis of bearing vibration based on spectrogram pattern matching

机译:基于谱图模式匹配的轴承振动自动分析方法

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As a mean for non-intrusive inspection of bearing systems, the scope of predicting their condition from the acoustic vibrations liberated during their operation, utilizing signal processing methods, has been of extensive research, over decades. Vibration being highly non-stationary, time domain as well as spectral features cannot characterize its behavior. Even though spectrogram is a time-frequency domain feature extraction technique, its interpretation is tedious and perhaps, subjective. In the proposed method, the spectrogram images of the normal vibration data is compared with that of the contextual vibration, using Structural Similarity Index Metric (SSIM). It is hypothesized that the pattern similarity between the contextual spectrogram and baseline is low when the bearing is faulty. The SSIM between the spectrogram image of normal bearing vibration data and the baseline is different from those between the baseline and vibration data corresponding to Inner Race Failure (IRF), Roller Element Defect (RED) and Outer Race Failure (ORF). Via the proposed method of spectrogram pattern matching based on SSIM, the subjectivity in the comparative interpretation of spectrogram is eliminated fully. The SSIM corresponding to the vibrations acquired from normal and faulty bearings differ with a P value of 4.43693xl0 -16 . The technique can distinguish defective bearings with, 95.74% sensitivity, 96% accuracy and 100% specificity, without dismantling or open intervention.
机译:作为对轴承系统进行非侵入式检查的一种手段,数十年来,利用信号处理方法根据其在运行过程中释放出的声振动来预测其状态的范围已得到广泛的研究。振动是高度不稳定的,时域以及频谱特征无法表征其行为。尽管频谱图是一种时频域特征提取技术,但其解释是乏味的,而且可能是主观的。在所提出的方法中,使用结构相似性指标度量(SSIM)将正常振动数据的频谱图图像与上下文振动的频谱图图像进行比较。假设当轴承有故障时,上下文频谱图和基线之间的模式相似度较低。正常轴承振动数据的频谱图图像和基线之间的SSIM与基线和振动数据之间的SSIM不同,后者对应于内圈故障(IRF),滚子元件缺陷(RED)和外圈故障(ORF)。通过提出的基于SSIM的谱图模式匹配方法,完全消除了谱图比较解释中的主观性。与从正常轴承和故障轴承获得的振动相对应的SSIM的P值为4.43693xl0 -16。该技术能够以95.74%的灵敏度,96%的精度和100%的特异性区分出有缺陷的轴承,而无需拆卸或开放干预。

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