首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2008 >DESIGN OF SUPERHYDROPHOBIC SURFACES FOR OPTIMUM ROLL-OFF AND DROPLET IMPACT RESISTANCE
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DESIGN OF SUPERHYDROPHOBIC SURFACES FOR OPTIMUM ROLL-OFF AND DROPLET IMPACT RESISTANCE

机译:超疏水表面的最佳滚动和抗液滴冲击设计

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We study the wetting behavior of water droplets on superhydrophobic arrays of lithographically fabricated square posts. To determine the droplet wetting state, we measure static contact angles and compare the results to predictions for equilibrium Cassie and Wenzel states. Surprisingly, we find that roll-off angles are minimized on surfaces expected to induce Wenzel-like wetting in equilibrium. We argue that droplets on these surfaces are metastable Cassie droplets whose internal Laplace pressure is insufficient to overcome the energy barrier required to completely wet the posts. These metastable Cassie droplets show superior roll-off properties because the effective length of the contact line that is pinned to the surface is reduced. We develop a model that can predict the transition between the metastable Cassie and Wenzel regimes by comparing the Laplace pressure of the drop to the capillary pressure associated with the wetting energy barrier of the textured surface. In the case of impacting droplets the water hammer and Bernoulli pressures must be compared with the capillary pressure. Experiments with impacting droplets show very good agreement with this simple pressure-balance model. Together these models can be used to optimize texture design for droplet-shedding and droplet-impact resistant surfaces.
机译:我们研究了在平版印刷的方柱的超疏水阵列上水滴的润湿行为。为了确定液滴的润湿状态,我们测量静态接触角,并将结果与​​Cassie和Wenzel平衡状态的预测值进行比较。出人意料的是,我们发现预期在平衡中引起类似Wenzel的润湿的表面上的滚落角最小。我们认为这些表面上的液滴是亚稳态的Cassie液滴,其内部Laplace压力不足以克服完全润湿柱所需的能垒。这些亚稳态的Cassie液滴显示出出色的滚降性能,因为固定在表面上的接触线的有效长度减少了。我们开发了一个模型,该模型可以通过比较液滴的拉普拉斯压力与与带纹理表面的润湿能垒相关的毛细压力来预测亚稳态Cassie和Wenzel机制之间的过渡。在撞击液滴的情况下,必须将水锤和伯努利压力与毛细管压力进行比较。冲击液滴的实验表明,这种简单的压力平衡模型具有很好的一致性。这些模型可以一起用于优化防液滴脱落和抗液滴撞击表面的纹理设计。

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