Optimized statistical parameters of acoustic emission signals for monitoring of rolling element bearings
المؤلف | Hemmati, Farzad |
المؤلف | Alqaradawi, Mohammed |
المؤلف | Gadala, Mohamed S |
تاريخ الإتاحة | 2021-07-05T11:03:43Z |
تاريخ النشر | 2016 |
اسم المنشور | Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology |
المصدر | Scopus |
الملخص | Acoustic emission (AE) signal generated from artificial defects in rolling element bearings are investigated using experimental measurements in this paper. Rolling element bearings are crucial parts of many machines and there has been an increasing demand to find effective and reliable health monitoring technique and advanced signal processing to detect and diagnose the size and location of incipient defects. Condition monitoring of rolling element bearings, comprises four main stages which are, statistical analysis, faults diagnostics, defect size calculation, and prognostics. In this paper, the effect of defect size, operating speed, and loading conditions on statistical parameters of AE signals, using design of experiment method, have been investigated to select the most sensitive parameters for diagnosing incipient faults and defect growth on rolling element bearings. IMechE 2015. |
اللغة | en |
الناشر | SAGE Publications Ltd |
الموضوع | acoustic emission bearing condition monitoring Design of experiment statistical analysis |
النوع | Article |
الصفحات | 897-906 |
رقم العدد | 8 |
رقم المجلد | 230 |
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