Theoretical and Numerical Analysis of a Passive Cooling System for a Commercial Photovoltaic Module

Vinicius Marson, Domisley Dutra Silva, J. B. C. Silva, E. M. Cardoso
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Abstract

The installed solar energy capacity increased in Brazil up to 169% from 2018 to 2019. Although photovoltaic systems do not require deep maintenance, the efficiency of photovoltaic modules is decreased from 0.40 to 0.50% for each °C gained in the operating temperature. Thus, depending on the environmental conditions, a cooling system is necessary to increase the durability and efficiency of the project. The present work analyzes the generation of an installed photovoltaic module (PV module) and performs a theoretical and numerical study for the system's thermal behavior, depending on the experimental conditions, including the impact of adding extended surfaces (fins) on the average module temperature. The passive cooling system consists of 36 L-shaped aluminum fins arranged in the central region on the backside surface of the PV module. The theoretical model for predicting the temperature of the PV module without a coupled cooling system was satisfactory compared with the values obtained experimentally; the numerical model presented similar results to the experimental ones, validating the simulation. A reduction in the average temperature of the module was observed with the use of fins as a passive cooling system (an average temperature reduction of 8 °C, in the analytical study, corroborated by a reduction of 8.8 °C in the numerical simulation compared to the experimental data).
商用光伏组件被动冷却系统的理论与数值分析
从2018年到2019年,巴西的太阳能装机容量增长了169%。虽然光伏系统不需要深度维护,但工作温度每增加1°C,光伏组件的效率就会从0.40下降到0.50%。因此,根据环境条件,冷却系统是必要的,以提高项目的耐用性和效率。目前的工作分析了安装光伏模块(PV模块)的产生,并根据实验条件对系统的热行为进行了理论和数值研究,包括添加扩展表面(鳍)对模块平均温度的影响。该被动冷却系统由36个l型铝翅片组成,该l型铝翅片位于光伏组件背面的中心区域。在没有耦合冷却系统的情况下,对光伏组件温度的理论预测模型与实验结果进行了比较,结果令人满意;数值模拟结果与实验结果相近,验证了数值模拟的正确性。使用翅片作为被动冷却系统,观察到模块的平均温度降低(在分析研究中平均温度降低了8°C,与实验数据相比,数值模拟中降低了8.8°C)。
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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