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Coalescence Spreading and Rebound of Two Water Dropletswith Different Temperatures on a Superhydrophobic Surface

机译:两个水滴的聚结扩散和反弹超疏水表面上不同温度的温度

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摘要

This paper studied the coalescence, spreading, and rebound of two droplets with different temperatures on a superhydrophobic surface. When the temperature of the impacting droplet was the same as that of the stationary droplet, there was a large deformation of both droplets before the coalescence and the energy dissipation was also large. The coalescence happened at the time close to the maximum spreading. When the temperature of the impacting droplet increased, the deformation of both droplets became smaller before the coalescence and the coalescence happened at or even before the droplets started to spread. The energy dissipation and loss in the later situation is less than those in the previous case. The rebounding characteristics of the merged droplets were also found to be dependent on the temperature. There is an optimum temperature at which the merged droplets can rebound for more times due to the balance of energy loss and also the interaction of the merged droplets with the underlying superhydrophobic substrate. These findings may help further the fundamental understanding of dropletcollision on a superhydrophobic surfaces and also offer an alternativestrategy to remove droplets from the underlying surfaces for differentindustrial applications, including condensation heat transfer in steampower plants and phase-change-based thermal management systems.
机译:本文研究了两个不同温度的液滴在超疏水表面上的聚结,扩散和回弹。当冲击液滴的温度与静止液滴的温度相同时,两个液滴在聚结之前都有较大的变形,并且能量耗散也很大。合并发生在接近最大扩展的时间。当冲击液滴的温度升高时,两个液滴的变形在聚结之前发生变小,并且聚结在液滴开始扩散甚至开始扩散之前就发生了。后一种情况下的能量耗散和损耗少于前一种情况。还发现合并的液滴的回弹特性取决于温度。由于能量损失的平衡以及合并的液滴与下面的超疏水性底物之间的相互作用,存在一个最佳温度,合并的液滴可以在该温度下反弹更多次。这些发现可能有助于进一步了解液滴碰撞在超疏水表面上,也提供了替代方法去除不同表面的液滴的策略工业应用,包括蒸汽中的冷凝热传递发电厂和基于相变的热管理系统。

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