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Effect of superamphiphobic macrotextures on dynamics of viscous liquid droplets

机译:超憎水宏观纹理对粘性液滴动力学的影响

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摘要

The ability of hydrophobic surfaces to repel impinging liquid droplets is important in applications ranging from self-cleaning of solar panels to avoiding ice formation in freezing rain environments. In quest of maximizing water repellency, modification of droplet dynamics and subsequent reduction of contact time have been achieved by incorporating macrotexture on the superhydrophobic surfaces. However, the dynamics of low temperature water, and other viscous liquid droplets impacting anti-wetting surfaces with macrotextures is not well explored. Here, we investigate the effect of viscosity on the bouncing dynamics of liquid droplets impacting macrotextured superamphiphobic surfaces using various glycerol-water mixtures as model liquids at different impacting conditions. We demonstrate that the changes of reduction in contact times by macrotextures due to the increasing viscosity are in opposite trends at low and at high impact velocities. Since macrotexture executes substantial contact time reduction for the droplets which exhibit splitting after the impact, a preliminary model for predicting the minimum impact velocity to observe droplet splitting by macrotexture is proposed considering the important parameters of an impinging droplet along with the surface characteristics and the macrotexture size. This work aims to provide an insight on several possible outcomes of viscous droplets impacting on the macrotextured surfaces and a model that will help to design the desired superamphiphobic surfaces capable of exhibiting reduced contact time and enhanced repellency of low-temperature water droplets (such as freezing rain) and other viscous liquids (such as oils) under different impacting conditions.
机译:疏水表面排斥撞击液滴的能力在从太阳能电池板的自我清洁到避免在冰冻雨水环境中避免结冰等各种应用中都很重要。为了最大化疏水性,已经通过在超疏水表面上引入宏观纹理来实现液滴动力学的改进和随后接触时间的减少。然而,没有很好地研究低温水和其他粘性液滴对具有宏观纹理的防湿表面的动力学。在这里,我们研究了粘度对液滴的弹跳动力学的影响,该液滴在不同的冲击条件下使用各种甘油-水混合物作为模型液体,冲击了具有宏观纹理的超疏水表面。我们证明了在低和高冲击速度下,由于粘度增加而使宏观纹理减少的接触时间的变化呈相反的趋势。由于宏观纹理对撞击后出现破裂的液滴执行了实质性的接触时间减少,因此,考虑到撞击液滴的重要参数以及表面特性和宏观纹理,提出了一种用于预测最小撞击速度以观察宏观破裂的液滴的初步模型。尺寸。这项工作旨在提供对粘性液滴撞击宏观纹理表面的几种可能结果的见解,以及一个有助于设计所需的超疏水表面的模型,该表面能够减少接触时间并增强低温水滴的排斥性(例如冻结)雨)和其他粘性液体(例如油)在不同的冲击条件下。

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