Department of Industrial and Information Engineering and Economics (DIIIE), University of L'Aquila, Piazzale Pontieri 1, Monteluco di Roio, I 67100, 67100 L'Aquila, Italy.
ENEA-Italian National Agency for New Technologies, Energy and Sustainable Economic Development, 00123 Rome, Italy.
Sensors (Basel). 2020 Feb 15;20(4):1055. doi: 10.3390/s20041055.
The evaluation of photovoltaic (PV) system's efficiency loss, due to the onset of faults that reduce the output power, is crucial. The challenge is to speed up the evaluation of electric efficiency by coupling the electric characterization of panels with information gathered from module diagnosis, amongst which the most commonly employed technique is thermographic inspection. The aim of this work is to correlate panels' thermal images with their efficiency: a "thermal signature" of panels can be of help in identifying the fault typology and, moreover, for assessing efficiency loss. This allows to identify electrical power output losses without interrupting the PV system operation thanks to an advanced PV thermography characterization. In this paper, 12 faulted working panels were investigated. Their electrical models were implemented in MATLAB environment and developed to retrieve the ideal I-V characteristic (from ratings), the actual (operative) I-V characteristics and electric efficiency. Given the curves shape and relative difference, based on three reference points (namely, open circuit, short circuit, and maximum power points), faults' typology has been evidenced. Information gathered from infrared thermography imaging, simultaneously carried out on panels during operation, were matched with those from electrical characterization. Panels' "thermal signature" has been coupled with the "electrical signature", to obtain an overall depiction of panels' health status.
评估由于故障导致输出功率降低而导致的光伏 (PV) 系统效率损失至关重要。挑战在于通过将面板的电气特性与从模块诊断中收集的信息相结合来加快对电气效率的评估,其中最常用的技术是热成像检查。本工作的目的是将面板的热图像与其效率相关联:面板的“热特征”可帮助识别故障类型,此外,还可评估效率损失。这允许在不中断 PV 系统运行的情况下通过先进的 PV 热成像特性来识别电力输出损耗。在本文中,研究了 12 个有故障的工作面板。它们的电气模型在 MATLAB 环境中实现,并开发用于检索理想的 I-V 特性(从额定值)、实际(工作)I-V 特性和电效率。基于三个参考点(即开路、短路和最大功率点),根据曲线形状和相对差异,证明了故障类型。在操作过程中同时对面板进行的红外热成像成像收集的信息与电气特性进行了匹配。将面板的“热特征”与“电特征”相结合,以获得面板健康状况的整体描述。