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Combined vibration and thermal analysis for the condition monitoring of rotating machinery

机译:振动和热分析相结合,用于旋转机械状态监测

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Traditional practice in vibration-based condition monitoring of rotating machines with a multiple bearing system, such as turbo-generator sets, is data intensive. Since a number of sensors are required at each bearing location, the task of diagnosing faults on these systems may be daunting for even an experienced analyst. Hence, this study seeks to develop a simplified fault diagnosis method that uses just a single vibration and a single temperature sensor on each bearing. Experiments were done on a laboratory rig with two dissimilar length rotors supported through four ball bearings. Commonly encountered rotor-related faults were independently simulated and compared to a baseline condition. For reference, conventional vibration spectrum analysis was done first. Overall vibration analysis was then conducted and combined with temperature data in two diagnosis approaches. Learning from the first combined approach, which had some limitations, was used to propose a principal component analysis-based approach that was demonstrated with and without temperature data. Results of the proposed principal component analysis-based method suggest that supplementing vibration data with temperature measurements gives improved fault diagnosis when compared to fault diagnosis using vibration data alone. The experimental rig, measurements done, description of both combined approaches and results obtained are presented in this article.
机译:具有多轴承系统的旋转机械(例如涡轮发电机组)的基于振动的状态监测的传统做法是数据密集型的。由于每个轴承位置都需要多个传感器,因此即使是经验丰富的分析人员,在这些系统上诊断故障的任务也可能会艰巨。因此,本研究寻求开发一种简化的故障诊断方法,该方法仅在每个轴承上使用单个振动和单个温度传感器。实验是在实验室设备上进行的,两个不同长度的转子通过四个滚珠轴承支撑。对常见的转子相关故障进行了独立模拟,并与基准条件进行了比较。作为参考,首先进行了常规振动谱分析。然后进行了整体振动分析,并结合了两种诊断方法中的温度数据。从有一定局限性的第一种组合方法中学习,被用来提出一种基于主成分分析的方法,该方法在有或没有温度数据的情况下都得到了证明。提出的基于主成分分析的方法的结果表明,与仅使用振动数据进行故障诊断相比,用温度测量值补充振动数据可以改善故障诊断。本文介绍了实验装置,完成的测量,组合方法的描述以及所获得的结果。

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