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Thermal response of poly-crystalline silicon photovoltaic panels: Numerical simulation and experimental study

机译:多晶硅光伏板的热响应:数值模拟和实验研究

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摘要

Photovoltaic (PV) panels, depending on the PV cell technology used, convert only a small amount of incident energy into electricity (about 5-25% for commercial systems), and the rest is converted into heat. The produced heat is partly transferred back to the environment while the remaining part causes the enhancement of the PV panel temperature itself. This increase in the PV panel temperature further affects power production adversely, if the PV panel temperature rises above the standard operating temperature (usually 25 degrees C). The present study deals with the thermal analysis of PV panel involving (i) numerical study based on finite element heat transfer, (ii) the outdoor experimental validation of the thermal model developed. The thermal model is based on the energy balance of the PV module in which all essential heat transfer mechanisms between the module to the environment and related power output are modeled to observe the net change in PV module temperature. The results clearly demonstrate the need and ability of the model to realistically simulate the thermal behavior of PV panels. Additionally, using the same model, numerical simulations have been also carried out for two different cities, namely Allahabad and Jodhpur, for Indian climate, to predict the hourly average module temperature of PV panels for different months. The results show that normal module temperature is raised much above the standard test conditions for the months of April, May and June. (c) 2016 Elsevier Ltd. All rights reserved.
机译:取决于所使用的PV电池技术,光伏(PV)面板仅将少量入射能量转换为电能(对于商用系统,约为5-25%),其余部分转换为热量。产生的热量部分转移回环境,而其余部分则导致PV面板温度本身升高。如果PV面板温度升高到标准工作温度(通常为25摄氏度)以上,则PV面板温度的这种升高会进一步影响电力生产。本研究涉及光伏板的热分析,包括(i)基于有限元热传递的数值研究,(ii)开发的热模型的室外实验验证。热模型基于光伏组件的能量平衡,其中对组件与环境之间的所有基本传热机制以及相关的功率输出进行建模,以观察光伏组件温度的净变化。结果清楚地表明了该模型逼真的模拟光伏面板热行为的必要性和能力。此外,使用相同的模型,还针对印度气候,在两个不同的城市(阿拉哈巴德和焦特布尔)进行了数值模拟,以预测不同月份的光伏面板每小时平均组件温度。结果表明,正常的模块温度比4月,5月和6月的标准测试条件高得多。 (c)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Solar Energy》 |2016年第9期|147-155|共9页
  • 作者单位

    Rajiv Gandhi Inst Petr Technol, Nonconvent Energy Lab, Raebareli, UP, India;

    Rajiv Gandhi Inst Petr Technol, Nonconvent Energy Lab, Raebareli, UP, India;

    Rajiv Gandhi Inst Petr Technol, Nonconvent Energy Lab, Raebareli, UP, India;

    Univ Nice Sophia Antipolis, Dept Math & Interact, F-06189 Nice, France|PSL Res Univ, Ctr Proc Renewable Energies & Energy Syst, Mines Paris Tech, Sophia Antipolis, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Photovoltaic; Numerical simulation; Thermal performance analysis;

    机译:光伏;数值模拟;热性能分析;

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