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Water Cooling Method to Improve the Performance of Field-Mounted, Insulated, and Concentrating Photovoltaic Modules

机译:水冷却方法以提高现场安装,绝缘和集中式光伏模块的性能

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摘要

The installation rate of crystalline silicon photovoltaic (PV) modules worldwide is at an all-time high and is projected to continue to grow as the cost of PV technology is reduced. It is important to note that PV power generation is heavily influenced by the local climate. In particular, for crystalline silicon-based PV devices, as the operating temperature of the panel increases, the efficiency decreases. Higher operating temperatures also lead to accelerated material and mechanical degradation, potentially compromising system effectiveness over the lifetime of the panels. In addition, atmospheric pollution can cause particle deposition on the surface of PV modules (soiling), reducing the amount of solar irradiance that reaches the PV material and reducing panel efficiency. Various cooling and cleaning methods have been proposed in the literature to mitigate these problems. In this study, a uniform film of water was continuously recirculated by pumping over the surface of a solar panel using an emitter head attached to the top of the panel. The water cooling technique was able to maintain panel temperature below 40 ℃ while adjacent untreated panels were operating near 55 ℃. Besides the efficiency improvements due to cooling, the film of water also kept the panels clean, avoiding any reduced power output caused by panel soiling. Additional studies were carried out with artificially chilled cooling fluid, insulating materials, and side mirrors to examine the cooling system performance under different installation scenarios. Water cooling is concluded to be an effective means of increasing the efficiency of monocrystalline silicon photovoltaic panels. Under normal operating conditions, the increased energy output from the panels is more than sufficient to compensate for the energy required to pump the water.
机译:全球晶体硅光伏(PV)模块的安装率是空前的,并且随着PV技术成本的降低,预计将继续增长。重要的是要注意,光伏发电受到当地气候的严重影响。特别地,对于基于晶体硅的PV器件,随着面板的工作温度升高,效率降低。较高的工作温度还会导致加速的材料和机械降解,从而有可能损害面板使用寿命内的系统效率。此外,大气污染会导致颗粒沉积在PV模块的表面(污垢),从而减少到达PV材料的太阳辐射量并降低面板效率。在文献中已经提出了各种冷却和清洁方法来减轻这些问题。在这项研究中,通过使用附着在太阳能电池板顶部的发射头在太阳能电池板的表面上抽水,使均匀的水膜连续再循环。水冷技术能够将面板温度保持在40℃以下,而相邻的未经处理的面板则在55℃附近运行。除了通过冷却提高效率外,水膜还可以保持面板清洁,避免因面板污染而导致功率输出降低。使用人工冷却的冷却液,绝缘材料和后视镜进行了其他研究,以检查不同安装场景下的冷却系统性能。结论是水冷却是提高单晶硅光伏面板效率的有效手段。在正常运行条件下,面板所增加的能量输出足以补偿抽水所需的能量。

著录项

  • 来源
    《Journal of solar energy engineering》 |2014年第3期|034503.1-034503.4|共4页
  • 作者单位

    Department of Chemistry and Department of Mechanical and Materials Engineering, Portland State University, Portland, OR 97207-0751;

    Department of Chemistry and Department of Mechanical and Materials Engineering, Portland State University, Portland, OR 97207-0751;

    Department of Chemistry, Portland State University, Portland, OR 97207-0751;

    Department of Chemistry, Portland State University, Portland, OR 97207-0751;

    Department of Mechanical and Materials Engineering, Portland State University, Portland, OR 97207-0751;

    Department of Mechanical and Materials Engineering, Portland State University, Portland, OR 97207-0751;

    Department of Biology, Portland State University, Portland, OR 97207-0751;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    photovoltaics; system; testing; efficiency;

    机译:光伏系统;测试;效率;
  • 入库时间 2022-08-17 13:25:39

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