基于I-V和P-V特征分析的光伏发电机组混合故障诊断方法

Noureddaher Zaidi, A. Khedher, M. Jemli
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引用次数: 1

摘要

本文提出了一种基于电流-电压和功率-电压曲线分析的光伏发电机组混合故障诊断方法。它主要基于两个签名生成器:模糊逻辑分类器和基于阈值的常规签名生成器。这两种分类器通过考虑三个阈值对可用数据进行处理,这三个阈值是根据发电机组光伏典型参数设定的,并且完全符合标准。所提出的故障诊断方法只需要可用的测量变量,并且能够识别与遮阳、温度、泄漏电流和增加的串联电阻损失相关的最常见故障。所述的光伏发电机是基于一个二极管模型。总体结果证明了该方法在光伏故障检测和识别方面的能力。
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A Hybrid fault diagnosis approach for PV generators based on I-V and P-V characteristics analysis
In this paper, we present a hybrid fault diagnosis approach dedicated for PV generators via current-voltage and power-voltage curves analysis. It is mainly based on two signature generators: a fuzzy logic classifier and a based threshold conventional one. The two classifiers act on the available data by considering three thresholds which are made according to the generator PV typical parameters and with a total conformity with the standards. The proposed fault diagnosis approach requires only the available measured variables and is able to identify the most frequently met faults related to shading, temperature, leakage current and increased series resistance losses. The addressed PV generators are based on one diode model. The overall results have proved the proposed methodology capability in PV faults detection and identification.
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