Cooling of Concentrator Photovoltaic Cells Using Mini-Scale Jet Impingement Heat Sinks

A. Radwan, Meshack Hawi, Mahmoud A. Ahmed
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引用次数: 1

Abstract

In this study, an efficient cooling technique for concentrator photovoltaic (CPV) cells is proposed to enhance the system electrical efficiency and extend its lifetime. To do this, a comprehensive three-dimensional conjugate heat transfer model of CPV cells layers coupled with the heat transfer and fluid flow model inside jet impingement heat sink is developed. Four different jet impingement designs are compared. The investigated designs are (A) central inlet jet, (B) Hypotenuse inlet jet, (C) staggered inlet jet, and (D) conventional jet impingement design with side drainage. The effect of coolant flowrate on the CPV/T system performance is investigated. The model is numerically simulated and validated using the available experiments. The performance of CPV system is investigated at solar concentration ratios of 20 and coolant flowrate up to 6000g/min. It is found that increasing the flowrate from 60 g/min to 600 g/min decrease the maximum cell temperature by 31°C for the configuration D while increasing the flowrate from 600 g/min to 6000 g/min reduce the cell temperature by 20.2°C. It is also concluded that at a higher flowrate of 6000g/min, all the investigated configurations relatively achieve better temperature uniformity with maximum temperature differences of 0.9 °C, 2.1 °C, 3.6 °C, and 3.9 °C for configurations A, B, C, and D respectively.
利用小型射流冲击散热器冷却聚光光伏电池
本研究针对聚光光伏(CPV)电池提出一种有效的冷却技术,以提高系统的电效率和延长其使用寿命。为此,建立了综合的CPV胞层三维共轭传热模型,并结合射流撞击式散热器内部的传热和流体流动模型。比较了四种不同的射流冲击设计。所研究的设计包括(A)中央进气道射流,(B)斜边进气道射流,(C)交错进气道射流,以及(D)带侧排的常规射流冲击设计。研究了冷却剂流量对CPV/T系统性能的影响。对模型进行了数值模拟,并利用已有的实验对模型进行了验证。研究了聚光比为20、冷却剂流量为6000g/min时CPV系统的性能。结果发现,当流量从60 g/min增加到600 g/min时,配置D的电池最高温度降低了31℃,而流量从600 g/min增加到6000 g/min时,电池温度降低了20.2℃。在较高的流量为6000g/min时,各配置的温度均匀性相对较好,配置a、B、C和D的最大温差分别为0.9℃、2.1℃、3.6℃和3.9℃。
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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