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粘度对非可润湿性脊状表面上椭圆形足迹液滴弹跳动力学的影响。

Effect of Viscosity on Bouncing Dynamics of Elliptical Footprint Drops on Non-Wettable Ridged Surfaces.

作者信息

Yun Sungchan

机构信息

Department of Mechanical Engineering, Korea National University of Transportation, Chungju 27469, Korea.

出版信息

Polymers (Basel). 2021 Dec 8;13(24):4296. doi: 10.3390/polym13244296.

Abstract

An initial drop shape can alter the bouncing dynamics and significantly decrease the residence time on superhydrophobic surfaces. Elliptical footprint drops show asymmetric dynamics owing to a pronounced flow driven by the initial drop shape. However, the fundamental understanding of the effect of viscosity on the asymmetric dynamics has yet to be investigated, although viscous liquid drop impact on textured surfaces is of scientific and industrial importance. Here, the current study focuses on the impact of elliptical footprint drops with various liquid properties (density, surface tension, and viscosity), drop sizes, and impact velocities to study the bouncing dynamics and residence time on non-wettable ridged surfaces numerically by using a volume-of-fluid method. The underlying mechanism behind the variation in residence time is interpreted by analyzing the shape evolution, and the results are discussed in terms of the spreading, retraction, and bouncing. This study provides an insight on possible outcomes of viscous drops impinging on non-wettable surfaces and will help to design the desired spraying devices and macro-textured surfaces under different impact conditions, such as icephobic surfaces for freezing rain or viscous liquids.

摘要

初始液滴形状会改变弹跳动力学,并显著缩短在超疏水表面上的停留时间。椭圆形足迹液滴由于初始液滴形状驱动的明显流动而呈现不对称动力学。然而,尽管粘性液滴撞击纹理表面具有科学和工业重要性,但对粘度对不对称动力学影响的基本理解尚未得到研究。在此,当前研究聚焦于具有不同液体性质(密度、表面张力和粘度)、液滴尺寸和撞击速度的椭圆形足迹液滴的撞击,通过使用流体体积法对不可润湿脊状表面上的弹跳动力学和停留时间进行数值研究。通过分析形状演变来解释停留时间变化背后的潜在机制,并从铺展、回缩和弹跳方面对结果进行讨论。本研究深入了解了粘性液滴撞击不可润湿表面的可能结果,并将有助于设计在不同撞击条件下所需的喷涂装置和宏观纹理表面,例如用于冻雨或粘性液体的憎冰表面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2e86/8708435/8ec34dd5e9f8/polymers-13-04296-g001.jpg

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