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Analysis of water cooling of CPV cells mounted on absorber tube of a Parabolic Trough Collector

机译:抛物线槽收集器吸收管的CPV电池水冷水冷分析

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In the present paper, an analytical approach has been developed and presented to estimate the thermal performance of multi-junction solar panel under high concentration with liquid cooling on both sides of the panel. For such system, the receiver of parabolic collector is modified to incorporate solar cells. A long panel of flexible solar cells is mounted on the outer side of circular receiver. The water is allowed to flow from inside as well as outside of receiver, thus reducing the temperature of the panel significantly. Analytical model is developed and thermal analysis has been carried out using MATLAB (vR2012a). The thermal model predicts the temperature variation of the cell along its length, which given the improved efficiency of the panel. To validate the proposed model, the simulation is performed in COMSOL (v5.1). The results show that temperature of the liquid can be maintained up-to 85 °C, thus reducing the temperature of panel from initial temperature (without liquid cooling) of above 134 °C, under stagnant air in the annulus conditions. The results obtained are within the close approximation. The future scope would include the experimental validation of the proposed system.
机译:在本文中,已经开发并提出了一种分析方法,以估计在面板两侧的液体冷却的高浓度下多结太阳能电池板的热性能。对于这种系统,修饰抛物线收集器的接收器以结合太阳能电池。长板的柔性太阳能电池安装在圆形接收器的外侧。允许水从内部以及接收器外部流动,从而显着降低了面板的温度。开发分析模型并使用MATLAB(VR2012A)进行了热分析。热模型预测细胞沿其长度的温度变化,这给出了面板的提高效率。为了验证所提出的模型,模拟在COMSOL(V5.1)中执行。结果表明,液体的温度可以保持高达85℃,从而在环形条件下停滞的空气下降低134℃的初始温度(无液体冷却)的面板温度。所获得的结果在近似近似。未来的范围包括所提出的系统的实验验证。

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