Effect of electrical operating conditions on thermal behavior of PV modules: Numerical and experimental analysis

IF 6.3 2区 材料科学 Q2 ENERGY & FUELS Solar Energy Materials and Solar Cells Pub Date : 2025-04-07 DOI:10.1016/j.solmat.2025.113625
Amr Osama , Giuseppe Marco Tina , Antonio Gagliano , Gabino Jimenez-Castillo , Francisco José Munoz-Rodríguez
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Abstract

The rapid growth of photovoltaic (PV) energy has the potential to transform the global energy landscape. However, the intermittent nature of solar power presents significant challenges to grid integration, such as overgeneration and curtailment. Consequently, PV systems may operate at points other than the maximum power point (MPP). Monitoring the thermal behavior of photovoltaic systems is critical due to its impact on productivity and system health. Most studies focus on meteorological variables, often overlooking the influence of electrical operating states on thermal performance. Thus the objective is to evaluate the accuracy of existing thermal models from the literature and widely used specialized software tools—alongside their commonly cited coefficients against different electrical operating status (EOS). This study investigates the thermal behavior of PV modules under different EOS: short-circuited (PVset-1), open-circuited (PVset-2), and operating at MPP (PVset-3). The experiment was conducted over four months at Jaén University campus in Spain. Results showed the short-circuited module's temperature was 6.90 °C higher, and the open-circuited module's temperature was 3.67 °C higher than the MPP module. Thermographic investigations revealed multiple hotspots in the short-circuited set. These hotspots can severely impact the module's long-term reliability and efficiency. The analysis of thermal models considering these operating states indicated an overestimation of the MPP module's temperature. However, the Keddouda model demonstrated high accuracy potential, with an average deviation of less than 3.4 %, particularly at high irradiance levels. These findings highlight the necessity of considering EOS in thermal models to enhance the accuracy and reliability of PV system performance assessments.
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电工作条件对光伏组件热行为的影响:数值和实验分析
光伏(PV)能源的快速增长有可能改变全球能源格局。然而,太阳能发电的间歇性给电网整合带来了重大挑战,如过度发电和弃电。因此,光伏系统可以在最大功率点(MPP)以外的点运行。监测光伏系统的热行为是至关重要的,因为它对生产力和系统健康的影响。大多数研究集中在气象变量上,往往忽略了电气运行状态对热工性能的影响。因此,我们的目标是评估现有热模型的准确性,这些模型来自文献和广泛使用的专业软件工具,以及它们针对不同电气操作状态(EOS)的常用引用系数。本研究研究了PV组件在不同EOS下的热行为:短路(PVset-1)、开路(PVset-2)和在MPP下运行(PVset-3)。这项实验在西班牙的雅桑杰大学校园进行了四个多月。结果表明,短路模块的温度比MPP模块高6.90℃,开路模块的温度比MPP模块高3.67℃。热成像调查显示,在短路集多个热点。这些热点会严重影响模块的长期可靠性和效率。考虑这些运行状态的热模型分析表明,MPP模块的温度被高估了。然而,Keddouda模型显示出高精度的潜力,平均偏差小于3.4%,特别是在高辐照水平下。这些发现强调了在热模型中考虑EOS以提高光伏系统性能评估的准确性和可靠性的必要性。
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来源期刊
Solar Energy Materials and Solar Cells
Solar Energy Materials and Solar Cells 工程技术-材料科学:综合
CiteScore
12.60
自引率
11.60%
发文量
513
审稿时长
47 days
期刊介绍: Solar Energy Materials & Solar Cells is intended as a vehicle for the dissemination of research results on materials science and technology related to photovoltaic, photothermal and photoelectrochemical solar energy conversion. Materials science is taken in the broadest possible sense and encompasses physics, chemistry, optics, materials fabrication and analysis for all types of materials.
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