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Experimental investigation of the effect of perforated fins on thermal performance enhancement of vertical shell and tube latent heat energy storage systems

机译:穿孔翅片对垂直壳和管潜热能储存系统热性能增强的实验研究

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摘要

A key challenge in the deployment of practical latent heat energy storage systems employing phase change materials is the inherent low thermal conductivity of these materials. The present research is motivated by the need to intensify the buoyancy-driven convection flow in the phase change material to enhance the thermal performance of the system. In this paper, for the first time, the effect of applying perforated fins on the thermal performance enhancement of a vertical shell and tube latent heat energy storage heat exchanger is experimentally investigated and the results are compared with those of the unfinned and solid finned heat exchangers as the base cases. Lauric acid as the phase change material is placed in the shell side and the water is passed through the inner tube. The shells of the heat exchangers were made of transparent Plexiglas tubes to enable the visual comparison of the melting processes. The fins and tubes were made of copper. The melting process of phase change material is studied under different inlet water flow rates (0.5 and 1 l/min) and temperatures (55 and 65 degrees C). The experimental results showed that the time-averaged Nusselt number of the perforated finned heat exchanger is about 30% higher than that of the solid finned heat exchanger due to the minor hindering effect of the perforated fins on the development of the convection flows. Moreover, the total melting time of the perforated finned heat exchanger is about 7% lower than that of the solid finned heat exchanger.
机译:在采用相变材料的实际潜热能存储系统的部署中部署的关键挑战是这些材料的固有的低导热率。目前的研究是由于需要加强相变材料中的浮力驱动的对流流动,以提高系统的热性能。在本文中,首次采用穿孔翅片对垂直壳和管潜热能储存热交换器的热性能增强的效果是通过实验研究的,并将结果与​​未固定和固体翅片热交换器进行比较作为基本情况。作为相变材料的月桂酸被置于壳侧,水通过内管。热交换器的壳由透明的有机玻璃管制成,以实现熔化过程的视觉比较。翅片和管由铜制成。在不同的入口水流速(0.5和1L / min)和温度(55和65℃)下研究相变材料的熔化过程。实验结果表明,由于穿孔鳍片对对流流动发展的次要呼吸效果,穿孔翅片热交换器的时级泡沫状物的时平孔数约为30%,高于固体翅片热交换器。此外,穿孔的翅片热交换器的总熔化时间比固体翅片热交换器低约7%。

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