Abolghasemibizaki Mehran, Dilmaghani Neda, Mohammadi Reza, Castano Carlos E
Department of Mechanical and Nuclear Engineering , Virginia Commonwealth University , Richmond , Virginia 23284 , United States.
Department of Mechanical Engineering , Johns Hopkins University , Baltimore , Maryland 21218 , United States.
Langmuir. 2019 Aug 20;35(33):10752-10761. doi: 10.1021/acs.langmuir.9b01109. Epub 2019 Aug 6.
Viscous droplet impact on nonwettable surfaces with complex geometry is of technological importance, but the fundamental understanding of the dynamics is not entirely understood yet. In this work, liquid drops with various viscosities and impact velocities were investigated, and their behavior was correlated with contact time upon impinging nonwettable flat and textured surfaces. It was shown that in the inertial-capillary regime, the contact time between the droplet and a flat surface is independent of impact velocity, whereas for the viscous-capillary regime, it increases with impact velocity. Drops impacting on nonwettable surfaces with single and multiple macroscopic ridges generally leave the surface at a reduced contact time, compared to flat surfaces. The incorporation of a single macrotexture results in a steplike reduction in the contact time because the impacting drop reaches the maximum spreading diameter, a condition that must happen when the capillary number is below unity.
粘性液滴撞击具有复杂几何形状的不可润湿表面具有重要的技术意义,但对其动力学的基本理解尚未完全明晰。在这项工作中,研究了具有不同粘度和撞击速度的液滴,并将它们的行为与撞击不可润湿平面和纹理表面时的接触时间相关联。结果表明,在惯性 - 毛细管 regime 中,液滴与平面之间的接触时间与撞击速度无关,而在粘性 - 毛细管 regime 中,它随撞击速度增加。与平面相比,撞击具有单个和多个宏观脊的不可润湿表面的液滴通常以减少的接触时间离开表面。单个宏观纹理的加入导致接触时间呈阶梯状减少,因为撞击的液滴达到最大铺展直径,当毛细管数低于 1 时必然会出现这种情况。