Key Laboratory of Enhanced Heat Transfer and Energy Conservation of Education Ministry, School of Chemistry and Chemical Engineering and ‡State Key Laboratory of Subtropical Building Science, South China University of Technology , Guangzhou 510640, China.
Langmuir. 2017 Jan 24;33(3):820-829. doi: 10.1021/acs.langmuir.6b04041. Epub 2017 Jan 11.
Superhydrophobic surfaces have attracted much attention in environmental control because of their excellent water-repellent properties. A successful design of superhydrophobic surfaces requires a correct understanding of the influences of surface roughness on water-repellent behaviors. Here, a new approach, a mesoscale lattice Boltzmann simulation approach, is proposed and used to model the dynamic behavior of droplets impacting on surfaces with randomly distributed rough microstructures. The fast Fourier transformation method is used to generate non-Gaussian randomly distributed rough surfaces, with the skewness and kurtosis obtained from real surfaces. Then, droplets impacting on the rough surfaces are modeled. It is found that the shape of droplet spreading is obviously affected by the distributions of surface asperity. Decreasing the skewness and keeping the kurtosis around 3 is an effective method to enhance the ability of droplet rebound. The new approach gives more detailed insights into the design of superhydrophobic surfaces.
超疏水表面因其优异的疏水性能而在环境控制中引起了广泛关注。超疏水表面的成功设计需要正确理解表面粗糙度对疏水行为的影响。在这里,提出并使用了一种新的方法,即介观格子玻尔兹曼模拟方法,来模拟具有随机分布粗糙微结构的液滴冲击表面的动力学行为。快速傅里叶变换方法用于生成非高斯随机分布的粗糙表面,其偏度和峰度取自真实表面。然后,对液滴冲击粗糙表面进行建模。结果发现,液滴铺展的形状明显受到表面粗糙度分布的影响。降低偏度并保持峰度在 3 左右是增强液滴回弹能力的有效方法。该新方法为超疏水表面的设计提供了更详细的见解。