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Unsupervised Monitoring System for Predictive Maintenance of High Voltage Apparatus

机译:高压设备预防性维护的无监督监控系统

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The online monitoring of a high voltage apparatus is a crucial aspect for a predictive maintenance program. The insulation system of an electrical machine is affected by partial discharges (PDs) phenomena that-in the long term-can lead to the breakdown. This in turn may bring about a significant economic loss; wind turbines provide an excellent example. Thus, it is necessary to adopt embedded solutions for monitoring the insulation status. This paper introduces an online system that exploit fully unsupervised methodologies to assess in real-time the condition of the monitored machine. Accordingly, the monitoring process does not rely on any prior knowledge about the apparatus. Nonetheless, the proposed system can identify the relevant drifts in the machine status. Notably, the system is designed to run on low-cost embedded devices.
机译:高压设备的在线监控是预测性维护程序的关键方面。电机的绝缘系统会受到局部放电(PDs)现象的影响,长期来看,这种现象会导致故障。反过来,这可能会造成重大的经济损失;风力涡轮机就是一个很好的例子。因此,有必要采用嵌入式解决方案来监测绝缘状态。本文介绍了一种在线系统,该系统利用完全不受监督的方法来实时评估受监视机器的状态。因此,监视过程不依赖于关于该设备的任何现有知识。尽管如此,所提出的系统仍可以识别机器状态中的相关漂移。值得注意的是,该系统被设计为在低成本嵌入式设备上运行。

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