An intelligent system for detecting faults in photovoltaic fields

P. Ducange, Michela Fazzolari, B. Lazzerini, F. Marcelloni
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引用次数: 107

Abstract

In this work, an intelligent system for automatic detection of fault in PV fields is proposed. This system is based on a Takagi-Sugeno-Kahn Fuzzy Rule-Based System (TSK-FRBS), which provides an estimation of the instant power production of the PV field in normal functioning, i.e, when no faults occur. Then, the estimated power is compared with the real power and an alarm signal is generated if the difference between powers overcomes a threshold. The TSK-FRBS has been trained using data collected from a PV plant simulator, during normal functioning. Preliminary tests were carried out in a simulated framework, by reproducing both normal and fault conditions. Results show that the system can recognize more than 90% of fault conditions, even when noisy data are introduced.
一种智能光伏电站故障检测系统
本文提出了一种用于光伏电站故障自动检测的智能系统。该系统基于Takagi-Sugeno-Kahn模糊规则系统(TSK-FRBS),该系统提供了光伏场在正常运行(即无故障发生时)的瞬时发电量估计。然后,将估计功率与实际功率进行比较,当功率差超过阈值时产生告警信号。TSK-FRBS在正常运行期间使用从光伏电站模拟器收集的数据进行训练。在模拟框架中进行了初步测试,再现了正常和故障条件。结果表明,即使在引入噪声数据的情况下,该系统仍能识别90%以上的故障情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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