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Comparison of Different Cooling Options for Photovoltaic Applications

机译:光伏应用的不同冷却选择的比较

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A temperature increase plays a negative role on photovoltaic (PV) panel conversion efficiency by increasing recombination rates. In this study, air- and water-cooling options were simulated to investigate the efficiency behavior of a specific PV panel made of heterojunction Silicon (Si) whilst PV panel was cooling in operation by using ANSYS-FLUENT. For air cooling, two different options were suggested: air cooling with four different flow speeds and air cooling with a heat sink addition with three different flow speeds. As for water-cooling three flowrates were considered. Temperature distributions of PV panels for the all cooling options were demonstrated as a function of flow velocity of air and flowrate of water for different cooling conditions and compared with each other. The influence of temperature difference on panel conversion efficiency were also discussed. As a result, heat sink with a proper flow arrangement cooling option showed the best performance in terms of minimum material, minimum cost and minimum complexity with the 42 °C, 38.4 °C, 35.9°C average surface temperatures and 20.9%, 21.3%, 21.5% panel efficiencies.
机译:温度升高通过增加重组率来对光伏(PV)板转化效率发挥负面作用。在本研究中,模拟了空气和水冷选择以研究由异质结硅(Si)制成的特定PV面板的效率行为,而通过使用ANSYS-FLUENT在操作中冷却PV面板。对于空气冷却,建议两种不同的选择:空气冷却,具有四种不同的流速和空气冷却,散热器加入具有三种不同的流速。对于水冷却,考虑了三个流量。所有冷却选项的PV面板的温度分布被证明为不同冷却条件的空气流速和流量流动的函数,彼此相比。还讨论了温差对面板转换效率的影响。结果,具有适当的流动布置冷却选项的散热器在最小材料,最小成本和最小复杂性方面具有最佳性能,具有42°C,38.4°C,35.9°C平均表面温度和20.9%,21.3% ,21.5%的面板效率。

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