论文标题
聚结诱导的聚合物液滴跳到超疏水表面上的数值模拟
Numerical simulation of the coalescence-induced polymeric droplet jumping on superhydrophobic surfaces
论文作者
论文摘要
通过三维直接数值模拟研究了两个聚合物液滴在超疏水表面上的自propelled跳跃。粘弹性流体载玻片的两个相同的液滴,在触点角度为180度的表面相遇并聚集。液滴是由Giesekus组成方程建模的,引入了粘弹性和剪切效果。 Cahn-Hilliard相位场方法用于捕获液滴界面。模拟捕获了自发的合并和液滴的跳跃。在毛细管惯性和粘性方案中研究了弹性和剪切对聚结和跳跃的影响。结果表明,液滴的弹性改变了牛顿滴在大ohnesorge数字上的已知毛细血管惯性速度缩放。当弹性产生合并后的液滴的可见形状振荡时,由此产生的粘弹性液滴从表面上跳下了比牛顿滴的大。数值结果表明,聚合物链在合并期间和两滴离开之前都拉伸,并且界面处的弹性应力会诱导液体从表面跳出。这项研究表明,许多生物学和工业应用的典型粘弹性会影响超疏水和自我清洁表面的液滴行为。
Self-propelled jumping of two polymeric droplets on superhydrophobic surfaces is investigated by three-dimensional direct numerical simulations. Two identical droplets of a viscoelastic fluid slide, meet and coalesce on a surface with contact angle 180 degrees. The droplets are modelled by the Giesekus constitutive equation, introducing both viscoelasticity and a shear-thinning effects. The Cahn-Hilliard Phase-Field method is used to capture the droplet interface. The simulations capture the spontaneous coalescence and jumping of the droplets. The effect of elasticity and shear-thinning on the coalescence and jumping is investigated at capillary-inertial and viscous regimes. The results reveal that the elasticity of the droplet changes the known capillary-inertial velocity scaling of the Newtonian drops at large Ohnesorge numbers; the resulting viscoelastic droplet jumps from the surface at larger Ohnesorge numbers than a Newtonian drop, when elasticity gives rise to visible shape oscillations of the merged droplet. The numerical results show that polymer chains are stretched during the coalescence and prior to the departure of two drops, and the resulting elastic stresses at the interface induce the jumping of the liquid out of the surface. This study shows that viscoelasticity, typical of many biological and industrial applications, affects the droplet behaviour on superhydrophobic and self-cleaning surfaces.