Tao Ran, Fang Wei, Wu Jun, Dou Binhong, Xu Wanghuai, Zheng Zhanying, Li Bing, Wang Zuankai, Feng Xiqiao, Hao Chonglei
School of Mechanical Engineering and Automation, Harbin Institute of Technology, Shenzhen 518055, China.
Institute of Biomechanics and Medical Engineering, Applied Mechanics Laboratory, Department of Engineering Mechanics, Tsinghua University, Beijing 100084, China.
Research (Wash D C). 2023;6:0023. doi: 10.34133/research.0023. Epub 2023 Jan 10.
Achieving rapid shedding of droplets from solid surfaces has received substantial attention because of its diverse applications. Previous studies have focused on minimizing contact times of liquid droplets interacting with stationary surfaces, yet little consideration has been given to that of moving surfaces. Here, we report a different scenario: A water droplet rapidly detaches from micro/nanotextured rotating surfaces in an intriguing doughnut shape, contributing to about 40% contact time reduction compared with that on stationary surfaces. The doughnut-shaped bouncing droplet fragments into satellites and spontaneously scatters, thus avoiding further collision with the substrate. In particular, the contact time is highly dependent on impact velocities of droplets, beyond previous descriptions of classical inertial-capillary scaling law. Our results not only deepen the fundamental understanding of droplet dynamics on moving surfaces but also suggest a synergistic mechanism to actively regulate the contact time by coupling the kinematics of droplet impingement and surface rotation.
由于其多样的应用,实现液滴从固体表面的快速脱落受到了广泛关注。以往的研究主要集中在尽量减少液滴与静止表面相互作用的接触时间,而很少考虑运动表面的情况。在此,我们报告一种不同的情形:一个水滴以有趣的甜甜圈形状从微纳纹理旋转表面迅速分离,与静止表面相比,接触时间减少了约40%。呈甜甜圈形状弹跳的液滴破碎成小液滴并自发散射,从而避免了与基底的进一步碰撞。特别地,接触时间高度依赖于液滴的撞击速度,这超出了以往经典惯性-毛细缩放定律的描述。我们的结果不仅加深了对运动表面上液滴动力学的基本理解,还提出了一种通过耦合液滴撞击运动学和表面旋转来主动调节接触时间的协同机制。