Thoraval Marie-Jean, Schubert Jonas, Karpitschka Stefan, Chanana Munish, Boyer François, Sandoval-Naval Enrique, Dijksman J Frits, Snoeijer Jacco H, Lohse Detlef
Physics of Fluids Group, Faculty of Science and Technology, Mesa + Institute, University of Twente, 7500AE Enschede, The Netherlands.
Soft Matter. 2021 May 28;17(20):5116-5121. doi: 10.1039/d0sm01367f. Epub 2021 May 11.
The splashing of liquid drops onto a solid surface is important for a wide range of applications, including combustion and spray coating. As the drop hits the solid surface, the liquid is ejected into a thin horizontal sheet expanding radially over the substrate. Above a critical impact velocity, the liquid sheet is forced to separate from the solid surface by the ambient air, and breaks up into smaller droplets. Despite many applications involving complex fluids, their effects on splashing remain mostly unexplored. Here we show that the splashing of a nanoparticle dispersion can be suppressed at higher impact velocities by the interactions of the nanoparticles with the solid surface. Although the dispersion drop first shows the classical transition from deposition to splashing when increasing the impact velocity, no splashing is observed above a second higher critical impact velocity. This result goes against the commonly accepted understanding of splashing, that a higher impact velocity should lead to even more pronounced splashing. Our findings open new possibilities to deposit large amount of complex liquids at high speeds.
液滴溅落在固体表面上对于包括燃烧和喷涂在内的广泛应用而言至关重要。当液滴撞击固体表面时,液体被喷射成一层薄的水平液膜,该液膜在基底上径向扩展。在临界撞击速度之上,液膜被周围空气迫使与固体表面分离,并破碎成更小的液滴。尽管许多应用涉及复杂流体,但它们对飞溅的影响大多仍未得到探索。在此我们表明,在较高撞击速度下,纳米颗粒分散体的飞溅可通过纳米颗粒与固体表面的相互作用得到抑制。尽管当增加撞击速度时,分散液滴最初会呈现出从沉积到飞溅的经典转变,但在第二个更高的临界撞击速度之上未观察到飞溅现象。这一结果与普遍接受的关于飞溅的认识相悖,即更高的撞击速度应导致更明显的飞溅。我们的发现为高速沉积大量复杂液体开辟了新的可能性。