Film coating by directional droplet spreading on fibers

T. Chan, Carmen L. Lee, C. Pedersen, K. Dalnoki-Veress, A. Carlson
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引用次数: 6

Abstract

Plants and insects use slender conical structures to transport and collect small droplets, which are propelled along the conical structures due to capillary action. These droplets can deposit a fluid film during their motion, but despite its importance to many biological systems and industrial applications the properties of the deposited film are unknown. We characterise the film deposition by developing an asymptotic analysis together with experimental measurements and numerical simulations based on the lubrication equation. We show that the deposited film thickness depends significantly on both the fiber radius and the droplet size, highlighting that the coating is affected by finite size effects relevant to film deposition on fibres of any slender geometry. We demonstrate that by changing the droplet size, while the mean fiber radius and the Capillary number are fixed, the thickness of the deposited film can change by an order of magnitude or more. We show that self-propelled droplets have significant potential to create passively coated structures.
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用定向液滴在纤维上扩散的方法涂膜
植物和昆虫利用细长的锥形结构来运输和收集小液滴,由于毛细作用,小液滴沿着锥形结构被推进。这些液滴可以在运动过程中沉积流体膜,但尽管它对许多生物系统和工业应用很重要,但沉积膜的性质尚不清楚。我们通过发展一个渐进分析,结合实验测量和基于润滑方程的数值模拟来表征薄膜沉积。我们表明,沉积的薄膜厚度在很大程度上取决于纤维半径和液滴尺寸,强调涂层受到与任何细长几何形状的纤维上的薄膜沉积相关的有限尺寸效应的影响。我们证明,在平均纤维半径和毛细数固定的情况下,通过改变液滴的大小,沉积膜的厚度可以改变一个数量级或更多。我们表明,自推进液滴具有创造被动涂层结构的巨大潜力。
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