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Photovoltaic Hot-Spots Fault Detection Algorithm Using Fuzzy Systems

机译:模糊系统的光伏热点故障检测算法

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摘要

Faults in photovoltaic (PV) modules, which might result in energy loss and reliability problems are often difficult to avoid, and certainty need to be detected. One of the major reliability problems affecting PV modules is hot-spotting, where a cell or group of cells heats up significantly compared to adjacent solar cells, hence decreasing the optimum power generated. In this article, we propose a fault detection of PV hot-spots based on the analysis of 2580 PV modules affected by different types of hot-spots, where these PV modules are operated under various environmental conditions, distributed across the U.K. The fault detection model comprises a fuzzy inference system (FIS) using Mamdani-type fuzzy controller including three input parameters, namely, percentage of power loss (PPL), short circuit current (I-sc), and open circuit voltage (V-oc). In order to test the effectiveness of the proposed algorithm, extensive simulation and experimental-based tests have been carried out; while the average obtained accuracy is equal to 96.7%.
机译:光伏(PV)模块中的故障,可能导致能量损失和可靠性问题往往难以避免,并且需要检测确定。影响PV模块的主要可靠性问题之一是热斑点,其中与相邻的太阳能电池相比,细胞或一组细胞加热,因此降低了产生的最佳功率。在本文中,我们提出了基于由不同类型热点影响影响的2580光伏模块的PV热点故障检测,其中这些光伏模块在各种环境条件下运行,分布在英国故障检测模型中包括使用Mamdani型模糊控制器的模糊推理系统(FIS),包括三个输入参数,即功率损耗(PPL),短路电流(I-SC)和开路电压(V-OC)的百分比。为了测试所提出的算法的有效性,已经进行了广泛的模拟和基于实验的测试;虽然平均获得的精度等于96.7%。

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