通过直接半月板可视化研究水下超疏水表面的润湿动力学

Muchen Xu, Guang-Yi Sun, C. Kim
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引用次数: 5

摘要

我们研究了浸没在水中的疏水表面上充满空气的微腔的润湿,方法是开发一种光学透明样品,使腔内液体-空气半月板的位置可见。板层状态,即被困在水中的空气的状态,是当今超疏水表面研究的中心问题,因为它对许多重要的应用都很重要,比如减阻。通过对湿润过程中单个沟槽上和沟槽内的半月板的连续观测,首次获得了半月板的确定性动力学,而不是以往研究的概率数据。我们的研究结果证实,半月板处于两种状态之一——固定在海沟口或在海沟侧壁上滑动,后者导致完全湿润(即Wenzel)状态。此外,结果表明,如果(或除非)水被空气饱和并且静水压力足够低,脱湿(即Cassie-Baxter)状态可以(或不能)是无限期的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wetting dynamics study of underwater superhydrophobic surfaces through direct meniscus visualization
We study wetting of an air-filled micro-cavity on hydrophobic surface submerged in water by developing an optically clear sample that makes the location of the liquid-air meniscus inside the cavity visible. The plastron state, i.e., the state of the trapped air under water, is a central issue for the superhydrophobic surface research today because of its importance for many important applications, such as drag reduction. By continuously observing the meniscus on and inside a single trench during the wetting process, we obtain deterministic dynamics of the meniscus for the first time, as opposed to the probabilistic data in the recent studies. Our results confirm that the meniscus is in one of two states - pinned at the mouth of the trench or sliding on the sidewall of the trench, the latter leading to the fully-wetting (i.e., Wenzel) state. Furthermore, the results reveal that the dewetted (i.e., Cassie-Baxter) state can (or cannot) be indefinite if (or unless) the water is saturated with air and the hydrostatic pressure is low enough.
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