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Numerical Simulation and Optimization of the Melting Process of Phase Change Material inside Horizontal Annulus

机译:水平环内相变材料熔化过程的数值模拟与优化

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Latent heat storage (LHS) technologies adopting phase change materials (PCMs) are increasingly being used to bridge the spatiotemporal mismatch between energy production and demand, especially in industries like solar power, where strong cyclic fluctuations exist. The shell-and-tube configuration is among the most prevalent ones in LHS and thus draws special attention from researchers. This paper presents numerical investigations on the melting of PCM, a paraffin blend RT27, inside a horizontal annulus. The volume of fluid model was adopted to permit density changes with the solidification/melting model wherein natural convection was taken into account. The eccentricity and diameter of the inner tube, sub-cooling degree of the PCM, and the heating-surface temperature were considered as variables for study. Through the evaluation of the melting time and exergy efficiency, the optimal parameters of the horizontal annulus were obtained. The results showed that the higher the heating boundary temperature, the earlier the convection appeared and the shorter the melting time. Also, the different eccentricity and diameters of the inner tube influenced the annulus tube interior temperature distribution, which in turn determined the strength and distribution of the resulting natural convection, resulting in varying melting rates.
机译:越来越多地采用采用相变材料(PCM)的潜热存储(LHS)技术来弥合能源生产和需求之间的时空失配,特别是在太阳能行业中,这种行业存在强烈的周期性波动。壳管配置是LHS中最流行的配置之一,因此引起了研究人员的特别关注。本文介绍了在水平环形空间内PCM(石蜡混合物RT27)熔化的数值研究。采用流体体积模型,以允许考虑自然对流的凝固/熔化模型发生密度变化。内管的偏心度和直径,PCM的过冷度以及加热表面温度被认为是研究的变量。通过对熔化时间和火用效率的评估,获得了水平环的最佳参数。结果表明,加热边界温度越高,对流越早出现,熔化时间越短。同样,内管的不同偏心率和直径也会影响环管内部的温度分布,进而决定了所产生的自然对流的强度和分布,从而导致熔融速率发生变化。

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