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The influence of microchannel heat sink configurations on the performance of low concentrator photovoltaic systems

机译:微通道散热器配置对低聚光光伏系统性能的影响

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摘要

A new cooling technique for concentrator photovoltaic (CPV) systems is developed using various configurations of microchannel heat sinks. Five distinct configurations integrated with a CPV system are investigated, including a wide rectangular microchannel, a single layer parallel-and counter-flow microchannel, and a double layer parallel- and counter- flow microchannel. A comprehensive, three-dimensional thermo-fluid model for photovoltaic layers, integrated with a microchannel heat sink, is developed. The model is numerically simulated and validated using the available experimental and numerical data. based on the results, the temperature contours on a plane located at the mid-thickness of the silicon layer are presented at different operating conditions and heat sink configurations. Accordingly, the maximum local temperature can be detected and temperature uniformity can be accurately estimated. Furthermore, at a concentration ratio of 20, the CPV system integrated with a single layer parallel-flow microchannel heat sink configuration (B) achieves the highest cell net power, electrical efficiency, and the minimum cell temperature. On the contrary, at the same operating conditions, the use of a single layer counter-flow microchannel heat sink configuration (C) is found to be the least effective cooling technique. The results of this study can guide industrial designers to adopt compact heat sink configurations and simple designs in the manufacturing process of hybrid CPV-thermal systems.
机译:使用微通道散热器的各种配置,开发了一种用于聚光光伏(CPV)系统的新冷却技术。研究了与CPV系统集成的五种不同配置,包括宽矩形微通道,单层平行和逆流微通道以及双层平行和逆流微通道。开发了用于光伏层的综合三维热流体模型,并与微通道散热器集成。使用可用的实验和数值数据对模型进行数值模拟和验证。根据结果​​,可以在不同的工作条件和散热片配置下显示位于硅层厚度中间的平面上的温度轮廓。因此,可以检测最大局部温度并且可以准确地估计温度均匀性。此外,在浓度比为20的情况下,与单层平行流微通道散热器配置(B)集成的CPV系统实现了最高的电池净功率,电效率和最低的电池温度。相反,在相同的操作条件下,发现单层逆流微通道散热器配置(C)是最无效的冷却技术。这项研究的结果可以指导工业设计人员在CPV混合热系统的制造过程中采用紧凑的散热器配置和简单的设计。

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