Lian Zhongxu, Xu Jinkai, Ren Wanfei, Wang Zuobin, Yu Huadong
Ministry of Education Key Laboratory for Cross-Scale Micro and Nano Manufacturing, Changchun University of Science and Technology, Changchun 130022, China.
International Research Centre for Nano Handling and Manufacturing of China, Changchun University of Science and Technology, Changchun 130022, China.
Nanomaterials (Basel). 2019 Oct 25;9(11):1524. doi: 10.3390/nano9111524.
Reducing the contact time of a water droplet on non-wetting surfaces has great potential in the areas of self-cleaning and anti-icing, and gradually develops into a hot issue in the field of wettability surfaces. However, the existing literature on dynamic behavior of water drops impacting on superhydrophobic surfaces with various structural shapes is insufficient. Inspired by the microstructure of lotus leaf and rice leaf, dual-level and three-level structures on plane and convex surfaces were successfully fabricated by wire electrical discharge machining on aluminum alloy. After spraying hydrophobic nanoparticles on the surfaces, the plane and convex surfaces with dual-level and three-level structures showed good superhydrophobic property. Bouncing dynamics of impact droplets on the superhydrophobic surfaces wereinvestigated, and the results indicated that the contact time of plane superhydrophobic surface with a three-level structure was minimal, which is 60.4% less than the plane superhydrophobic surface with dual-level structure. The effect of the interval , width , and height of the structure on the plane superhydrophobic surface with three-level structure on contact time was evaluated to obtain the best structural parameters for reducing contact time. This research is believed to guide the direction of the structural design of the droplet impinging on solid surfaces.
减少水滴在非湿润表面的接触时间在自清洁和防冰领域具有巨大潜力,并逐渐成为润湿性表面领域的一个热点问题。然而,现有关于水滴冲击各种结构形状超疏水表面的动态行为的文献并不充分。受荷叶和水稻叶片微观结构的启发,通过电火花线切割加工在铝合金平面和凸面上成功制备了双层和三层结构。在表面喷涂疏水性纳米颗粒后,具有双层和三层结构的平面和凸面表现出良好的超疏水性。研究了冲击液滴在超疏水表面上的弹跳动力学,结果表明具有三层结构的平面超疏水表面的接触时间最短,比具有双层结构的平面超疏水表面减少了60.4%。评估了三层结构平面超疏水表面的结构间隔、宽度和高度对接触时间的影响,以获得减少接触时间的最佳结构参数。本研究有望为液滴撞击固体表面的结构设计指明方向。