首页> 外文会议>Society for Machinery Failure Prevention Technology Meeting; 20050418-21; Virginia Beach,VA(US) >BEARING INCIPIENT FAULT DETECTION: TECHNICAL APPROACH, EXPERIENCE, AND ISSUES
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BEARING INCIPIENT FAULT DETECTION: TECHNICAL APPROACH, EXPERIENCE, AND ISSUES

机译:进行突发故障检测:技术方法,经验和问题

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This paper describes a technical approach for detection and prediction of incipient bearing faults in complex machinery applications. The authors have developed and adapted the ImpactEnergy™ suite of vibration signal processing algorithms that are sensitive to bearing fatigue and wear events but minimize sensitivity to machinery noise generated by gearing. The ImpactEnergy™ algorithm suite develops an array of time and frequency domain features generated through an adaptive enveloping and demodulation scheme to provide quality diagnostic outputs for advanced machinery health monitoring. The technique reviewed here provides early detection and severity assessment of bearing faults by utilizing multiple regions of the vibro-acoustic energy spectrum. The multiple bandwidth strategies and feature extraction algorithms begin with a foundational understanding of mechanical fault propagation in drive train bearings. Experience with these algorithms and correlation of the indicators within seeded and transitional tests is offered in this paper. The authors discuss specific issues of observability and application of these techniques to the Expeditionary Fighting Vehicle.
机译:本文介绍了一种用于检测和预测复杂机械应用中的初始轴承故障的技术方法。作者已经开发并改编了ImpactEnergy™振动信号处理算法套件,该算法对轴承疲劳和磨损事件敏感,但对齿轮传动产生的机械噪声的敏感度却最小。 ImpactEnergy™算法套件开发了一系列时域和频域特征,这些特征是通过自适应包络和解调方案生成的,以提供用于高级机械健康监控的质量诊断输出。此处回顾的技术通过利用振动声能谱的多个区域提供了轴承故障的早期检测和严重性评估。多种带宽策略和特征提取算法从对传动系统轴承中的机械故障传播的基础了解开始。本文提供了这些算法的经验以及种子测试和过渡测试中指标的相关性。作者讨论了可观察性的具体问题以及这些技术在远征战斗机中的应用。

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