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接触线黏滑运动和微米级波纹纤维上的弯月面演化。

Contact line stick-slip motion and meniscus evolution on micrometer-size wavy fibres.

机构信息

Department of Materials Engineering, KU Leuven, Leuven, Belgium.

TIPs (Transfers, Interfaces, and Processes), Université Libre de Bruxelles, Bruxelles, Belgium.

出版信息

J Colloid Interface Sci. 2019 Mar 22;540:544-553. doi: 10.1016/j.jcis.2019.01.045. Epub 2019 Jan 14.

Abstract

HYPOTHESIS

The architecture of complex-shaped fibres affects the motion of the contact line and the evolution of its associated menisci when a fibre is immersed into a liquid. Understanding and predicting the motion of the contact line is critical in the design of complex-shaped fibres for many engineering applications as well as for surface science. While wetting on classic circular cylinders has been well studied, singularities during the wetting process of complex-shaped fibres are not yet well understood.

EXPERIMENTS

The dynamic wetting behaviour of axisymmetric sinus-shaped fibres immersed vertically in a liquid volume was investigated. Fibres were 3D-printed down to micrometre dimensions, and the Wilhelmy method was used in parallel with meniscus shape analysis. Moreover, a quasi-static theoretical model predicting the contact line movement and free energy of the system evolution on these fibres is also proposed.

FINDINGS

The observation of liquid advancing and receding fronts highlighted a stick-slip motion of the meniscus depending on both the fibre surface curvature and its intrinsic wettability. The model predicts that the behaviour of the seemingly pinned and then jumping contact line, with associated changes in apparent contact angles, can be explained by the interplay between a constant local contact angle and the movement of the bulk liquid, leading to the storage of energy which is suddenly released when the contact line passes a given point of fibre curvature. Besides, acceleration/deceleration events that take place before and after the jumps are experimentally observed in good agreement with the model.

摘要

假设

当纤维浸入液体中时,复杂形状纤维的结构会影响接触线的运动及其相关弯月面的演变。理解和预测接触线的运动对于许多工程应用以及表面科学中复杂形状纤维的设计至关重要。虽然经典的圆形圆柱的润湿已经得到了很好的研究,但复杂形状纤维润湿过程中的奇点还没有得到很好的理解。

实验

研究了垂直浸入液体体积中的轴对称正弦形纤维的动态润湿行为。纤维可以打印到微米尺寸,同时使用威尔海米法和弯月面形状分析。此外,还提出了一个准静态理论模型,用于预测这些纤维上接触线运动和系统演化自由能。

结果

观察到液体前进和后退前沿突出了弯月面的粘滑运动,这取决于纤维表面曲率和固有润湿性。该模型预测,看似固定然后跳跃的接触线的行为,以及相应的表观接触角变化,可以通过局部接触角的恒定和体相液体的运动之间的相互作用来解释,从而导致能量的储存,当接触线通过纤维曲率的给定点时,能量会突然释放。此外,模型预测的在跳跃前后发生的加速/减速事件与实验结果吻合良好。

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