A statistical-based approach for fault detection and diagnosis in a photovoltaic system

E. Garoudja, F. Harrou, Ying Sun, Kamel Kara, A. Chouder, S. Silvestre
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引用次数: 21

Abstract

This paper reports a development of a statistical approach for fault detection and diagnosis in a PV system. Specifically, the overarching goal of this work is to early detect and identify faults on the DC side of a PV system (e.g., short-circuit faults; open-circuit faults; and partial shading faults). Towards this end, we apply exponentially-weighted moving average (EWMA) control chart on the residuals obtained from the one-diode model. Such a choice is motivated by the greater sensitivity of EWMA chart to incipient faults and its low-computational cost making it easy to implement in real time. Practical data from a 3.2 KWp photovoltaic plant located within an Algerian research center is used to validate the proposed approach. Results show clearly the efficiency of the developed method in monitoring PV system status.
基于统计的光伏系统故障检测与诊断方法
本文报道了一种用于光伏系统故障检测和诊断的统计方法的发展。具体来说,这项工作的总体目标是早期检测和识别光伏系统直流侧的故障(例如,短路故障;开路故障;和部分遮阳缺陷)。为此,我们对从单二极管模型获得的残差应用指数加权移动平均(EWMA)控制图。这种选择的动机是由于EWMA图对早期故障具有较高的灵敏度,并且其计算成本低,易于实时实现。来自位于阿尔及利亚研究中心的3.2 KWp光伏电站的实际数据用于验证所提出的方法。结果表明,该方法在光伏系统状态监测中的有效性。
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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