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Heat transfer performance and melting dynamic of a phase change material subjected to thermocapillary effects

机译:受热毛细管作用的相变材料的传热性能和熔融动力学

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We carry out extensive numerical simulations on the melting of the Phase Change Material n-octadecane subjected to thermocapillary driving at a free surface on geometries with the form of circular sections of radius in order of centimeters. Simulations employ Stefan numbers Ste = 0.22 and Ste = 0.67. We compare the heat transfer performance with melting induced only by conduction and find a reduction of melting times by thermocapillarity up to a factor five for semicircular geometries. As a consequence, we propose the use of this mechanism in applications of thermoregulation in microgravity that require fast charge and discharge cycles. We show how a longer free surface enhances the effect of thermocapillarity on the heat transfer performance due to a greater contact area of solid PCM with regions of melted PCM dominated by thermocapillary flows. The length of the free surface has more impact on the heat transfer performance than the contact area between PCM and heat source in the geometries studied in this work. Besides, we observe as well how greater thermal gradients for higher Stefan number augment the importance of thermocapillary effects on the heat transfer performance.
机译:我们对几何形状的自由表面(半径为厘米量级的圆形截面)上的自由表面上受热毛细管驱动的相变材料正十八烷的熔化进行了广泛的数值模拟。模拟使用Stefan数Ste = 0.22和Ste = 0.67。我们将传热性能与仅由传导引起的熔化进行了比较,发现对于半圆形几何形状,由于热毛细作用导致的熔化时间减少了五倍。因此,我们建议在需要快速充电和放电周期的微重力温度调节应用中使用此机制。我们展示了更长的自由表面如何由于固体PCM与由热毛细流控制的熔融PCM区域的更大接触面积而增强了热容性对传热性能的影响。在这项工作中研究的几何形状中,自由表面的长度比PCM和热源之间的接触面积对传热性能的影响更大。此外,我们还观察到更高的Stefan数越大的热梯度如何增加热毛细管效应对传热性能的重要性。

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