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EFFECTS OF THERMOCAPILLARY CONVECTION ON MELTING WITHIN DROPLETS

机译:热量对流对液滴内熔化的影响

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摘要

A computational study of the effects of thermocapillary convection on melting of spherical droplets as a result of an incident uniform heat flux is presented. The computations are based on an iterative, finite-volume numerical procedure using primitive dependent variables, whereby the time-dependent continuity, momentum and energy equations in the spherical coordinate system are solved. During the early periods of the melting process, conduction mode of heat transfer is dominant. As the thermocapillary convection strengthens due to the growth of the melt zone, faster melting on the side of the droplet is observed compared to the conduction-only case. Due to the slanted shape of the interface caused by the preferred melting on the surface, a new recirculating vortex is created which promotes melting within the droplet. For moderate Pr-number fluids, the molten zone increases rapidly along the surface and reaches the unheated side, thus producing a solid inner core. The effects of the sign of the surface-tension temperature coefficient on the melting pattern are also investigated.
机译:介绍了热毛细管对流对由于入射均匀热通量造成的球形液滴熔化的计算研究。计算基于使用原始相关变量的迭代,有限体数值过程,由此解决了球形坐标系中的时间依赖连续性,动量和能量方程。在熔化过程的早期期间,传热导电模式是显性的。随着由于熔体区的生长导致的热毛细管对流加强,与仅传导壳体相比,观察到液滴侧的较快熔化。由于由表面上优选的熔化引起的界面的倾斜形状,产生了一种新的再循环涡流,其促进液滴内熔化。对于适度的Pr次数流体,熔融区沿着表面迅速增加并达到未加热的侧面,从而产生固体内芯。还研究了表面张力温度系数对熔化图案的迹象的影响。

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