Wang Yi-Bo, Wang Yi-Feng, Yang Yan-Ru, Wang Xiao-Dong, Chen Min
State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University, Beijing 102206, China.
Research Center of Engineering Thermophysics, North China Electric Power University, Beijing 102206, China.
J Phys Chem B. 2021 Jun 3;125(21):5630-5635. doi: 10.1021/acs.jpcb.1c01735. Epub 2021 May 19.
The kinematic time and maximum spreading time for the impact of nanodroplets of different types of fluids on solid surfaces with different wettability are investigated. It shows that the capillary regime still exits for the nanodroplet impact, even if viscous dissipation increases significantly when the droplet size reduces to the nanoscale. By taking into account the influence of liquid types and surface wettability, we first obtain scaling laws of the maximum spreading time for the capillary and viscous regimes. We further propose a universal scaling law by interpolating the scaling laws in the two asymptotic regimes. The universal scaling law is in excellent agreement with molecular dynamics simulations for various liquids and surface wettability.
研究了不同类型流体的纳米液滴撞击具有不同润湿性的固体表面时的运动学时间和最大铺展时间。结果表明,即使当液滴尺寸减小到纳米尺度时粘性耗散显著增加,纳米液滴撞击时毛细作用机制仍然存在。通过考虑液体类型和表面润湿性的影响,我们首先得到了毛细作用和粘性作用机制下最大铺展时间的标度律。我们进一步通过对两种渐近机制下的标度律进行插值,提出了一个通用标度律。该通用标度律与各种液体和表面润湿性的分子动力学模拟结果高度吻合。