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Droplet impingement on nano-textured superhydrophobic surface: Experimental and numerical study

机译:纳米纹理超疏水表面的液滴冲击:实验和数值研究

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The impact characteristics of liquid droplet on the nano-textured superhydrophobic surface have been investigated experimentally and numerically to understand the underlying mechanism and select appropriate models to describe them. The evolution of impact process with droplet impact velocity varied form 0.11-3.9m/s (or Weber number ranging from 0.3 to 421.4) was recorded and analyzed. Besides, a conservative level set method coupled with dynamic contact angle models was developed to track the phase interface and made a comparison with the experiment. During the spreading and receding phases, the numerical simulation results showed good agreement with the experiment. The impact of droplet satisfied the energy conservation between kinetic and surface energy, and the maximum spreading factor (beta max) can be well correlated by a scaling law of beta max similar to We(0.52). Both of the contact time and non-dimensional contact time of bouncing droplets were independent of Weber number in the range of 1.5 to 121. The predicted non-dimensional contact times were in good agreement with the reference value of 2.6 +/- 0.1 at low and medium Weber numbers. The dynamic contact angle models derived from the hydrodynamic theory and molecular-kinetic theory, respectively, can mainly apply to the advancing and receding phases of droplet impact on nano-textured superhydrophobic surfaces.
机译:实验和数值研究了纳米纹理超疏水表面上的液滴对纳米纹理超疏水表面的影响特征,以了解潜在机制,并选择适当的模型来描述它们。记录并分析了液滴冲击速度变化形式0.11-3.9m / s(或从0.3至421.4的韦伯号)的影响。此外,开发了一种与动态接触角模型耦合的保守水平集合,以跟踪相界面并与实验进行比较。在扩散和后退阶段期间,数值模拟结果与实验吻合良好。液滴的影响满足动力学和表面能之间的节能,并且最大扩散因子(βMax)可以通过与我们(0.52)类似的β最大的缩放规律来良好相关。弹跳液滴的接触时间和非尺寸接触时间都与1.5至121的韦伯数无关。预测的无维接触时间与低于低2.6 +/- 0.1的参考值良好和中等韦伯号码。源自流体动力学理论和分子动力学理论的动态接触角模型分别主要适用于对纳米纹理超疏水表面的液滴冲击的推进和后退阶段。

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