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Cooling concentrator photovoltaic systems using various configurations of phase-change material heat sinks

机译:使用各种配置的相变材料散热器的冷却聚光光伏系统

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摘要

A new hybrid concentrator photovoltaic-phase change material system is developed to attain rapid thermal dissipation by enhancing the typically low thermal conductivity of phase change materials. The developed system includes four different configurations of phase change material heat sinks: single cavity, three-parallel cavity, five-parallel cavity, and three-series cavity configuration. Furthermore, nine different pattern arrangements of phase change materials are studied. A comprehensive two-dimension model of photovoltaic layers integrated with phase change material heat sink is developed to predict the transient temperature variation at different concentration ratios of 10 and 20. The model is numerically simulated and validated with the available experimental data; the heat sink configurations with three and five parallel cavities are found to significantly reduce the solar cell temperature compared to the single cavity and three-series cavity heat sink configurations. Furthermore, the use of a five-parallel cavity heat sink is found to greatly enhance temperature uniformity of the solar cell. Substantial enhancement in temperature uniformity is also observed with different pattern arrangements of the phase change materials using the three-parallel cavity configuration. These findings can help identify the optimal configuration of heat sinks and pattern arrangements of phase change materials in order to achieve higher performance with concentrator photovoltaic systems.
机译:开发了一种新的混合式聚光器光伏相变材料系统,以通过增强相变材料的典型低导热率来实现快速散热。开发的系统包括四种不同的相变材料散热器配置:单腔,三平行腔,五平行腔和三串联腔配置。此外,研究了相变材料的九种不同图案布置。建立了集成有相变材料散热器的光伏层的二维模型,以预测在10和20的不同浓度比下的瞬态温度变化。对该模型进行了数值模拟,并利用现有的实验数据进行了验证。与单腔和三串腔散热器配置相比,具有三个和五个平行腔的散热器配置可显着降低太阳能电池温度。此外,发现使用五个平行腔的散热器极大地提高了太阳能电池的温度均匀性。使用三平行腔配置,在相变材料的不同图案布置下,还观察到温度均匀性的显着提高。这些发现可以帮助确定散热器的最佳配置和相变材料的图案排列,以便在聚光光伏系统中实现更高的性能。

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