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表面疏水性对液滴聚并和跳跃动力学影响的研究进展

Insights into the Impact of Surface Hydrophobicity on Droplet Coalescence and Jumping Dynamics.

机构信息

Department of Mechanical and Materials Engineering, Masdar Institute, Khalifa University of Science and Technology , P.O. Box 54224, Abu Dhabi, UAE.

出版信息

Langmuir. 2017 Aug 29;33(34):8574-8581. doi: 10.1021/acs.langmuir.7b02146. Epub 2017 Aug 15.

Abstract

Droplet coalescence jumping on superhydrophobic surfaces attracts much research attention owing to its capability in enhancing condensation for energy and water applications. In this work, we reveal the impact of the finite surface adhesion to explain velocity discrepancies observed in recent droplet jumping studies, particularly when droplet sizes are a few micrometers (1-10 μm). Surface adhesion, which is usually neglected, can significantly affect both droplet coalescence and departure dynamics. It causes oscillations on velocity and contact area in the droplet coalescence process, as observed numerically and experimentally. Comparing the increasing rate of jumping velocity with contact angle for three different droplet sizes, we show that smaller droplets exhibit higher sensitivity to the change of surface hydrophobicity. We also specify the range of surface superhydrophobicity where the jumping velocity monotonically decreases (θ ≳ 170°), increases (θ ≲ 160°), or changes non-monotonically in transition (160° ≲ θ ≲170°) with droplet size. As a result, there exists a broad jumping velocity range for micrometer-sized droplets on a superhydrophobic surface with a slight contact angle variation. This work offers an extended understanding of the droplet coalescence and jumping dynamics to resolve the discrepancies in recent experimental observations.

摘要

液滴合并在超疏水表面上的跳跃吸引了大量的研究关注,因为它具有增强能源和水应用中冷凝的能力。在这项工作中,我们揭示了有限表面附着力的影响,以解释最近液滴跳跃研究中观察到的速度差异,特别是当液滴尺寸为几微米(1-10 μm)时。表面附着力通常被忽略,但它会显著影响液滴合并和脱离动力学。它会导致液滴合并过程中的速度和接触面积的振荡,这在数值和实验上都得到了观察。通过比较三种不同液滴尺寸的跳跃速度与接触角的增长率,我们表明较小的液滴对表面疏水性变化的敏感性更高。我们还指定了跳跃速度随液滴尺寸单调减小(θ≳170°)、单调增加(θ≲160°)或非单调变化(160°≲θ≲170°)的表面超疏水性范围。因此,在超疏水表面上,对于微米级的液滴,存在一个较宽的跳跃速度范围,只需接触角稍有变化。这项工作提供了对液滴合并和跳跃动力学的扩展理解,以解决最近实验观察中的差异。

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