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Numerical study of dynamic melting enhancement in a latent heat thermal energy storage system

机译:潜热热储能系统动态熔化增强的数值研究

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In the present work, a 2D Cartesian numerical model is implemented to simulate the transient behaviour of a latent heat thermal energy storage system under the effect of the dynamic melting enhancement technique. This enhancement technique consists of recirculating the liquid phase change material (PCM) during the melting process with an external pump and therefore increasing the overall heat transfer coefficient. Several simulations were carried out to study the influence of the PCM flow direction, the PCM velocity, and the heat gains in the PCM recirculation loop, showing in all cases the benefits of implementing this enhancement technique. Results from the simulations show that when the PCM flows from top to bottom, higher enhancements are obtained when compared to the PCM flowing from bottom to top. Moreover, it is observed that the higher the PCM velocity, the better the enhancement in terms of process duration and heat transfer rates. Additionally, the PCM velocity also has an influence over the evolution of the PCM melting front and thus over the evolution of the PCM temperature profiles. It is shown that the intensity of the enhancements, as well as the evolution of the melting front and temperature profiles, are more influenced by the PCM velocity than by the ratio between the heat transfer fluid (HTF) and PCM velocities. Finally, heat gains should be avoided in the PCM recirculation loop since they decrease the heat transfer rate between the PCM and the HTF.
机译:在本作工作中,实施了2D笛卡尔数值模型以模拟动态熔化增强技术的效果下潜热热能存储系统的瞬态行为。这种增强技术包括在用外部泵的熔化过程中再循环液相变化材料(PCM),因此增加了总传热系数。进行了几种模拟,以研究PCM流动方向,PCM速度和PCM再循环回路中的热量增加的影响,显示在所有情况下实现这种增强技术的益处。模拟结果表明,当PCM从上到下流动时,与从底部到顶部流动的PCM相比,获得更高的增强。此外,观察到,PCM速度越高,在处理持续时间和传热速率方面的增强越好。另外,PCM速度也在对PCM熔化前的进化产生影响,因此在PCM温度谱的演变上产生影响。结果表明,增强的强度以及熔化前和温度剖面的演变,受到PCM速度的影响而不是通过传热流体(HTF)和PCM速度之间的比率。最后,在PCM再循环回路中应避免加热增益,因为它们降低了PCM和HTF之间的传热速率。

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