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One year Operation of an Innovative Condition Monitoring Technique in Four Hydropower Plants

机译:四个水力发电厂的状态监测技术创新运行一年

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This work presents the results of the application to four hydropower plants in Europe, with a total power of 1.4GW, of a recently developed monitoring and early diagnostic methodology. The innovative approach is based on data-driven and machine learning tools, such as Self-Organizing Maps, allowing an unsupervised learning of the global health state of the plant, and, at the same time, allowing to discriminate the plant variables involved in a faulty behaviour. A number of relevant incipient malfunctions were detected in early stage by our approach, during one year of operation in four plants, which are of different size and use different technologies. The feedback from the plant operators was very positive, with respect to the capacity of the system to reveal incipient faults, which were, in most cases, not properly detected by the traditional monitoring systems installed in the plants.
机译:这项工作介绍了最近开发的监测和早期诊断方法在欧洲四个水电站的总应用功率为1.4GW的应用结果。该创新方法基于数​​据驱动和机器学习工具,例如自组织映射,可以无监督地了解植物的全球健康状况,同时可以区分与植物相关的植物变量。错误的行为。通过我们的方法,在四个规模不同且使用不同技术的工厂运行一年后,我们的方法在早期发现了许多相关的初期故障。对于系统显示初期故障的能力,来自工厂操作员的反馈是非常积极的,在大多数情况下,工厂中安装的传统监控系统无法正确检测到这些早期故障。

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