Conical-focusing: Mechanism for singular jetting from collapsing drop-impact craters
Abstract
Fast microjets can emerge out of liquid pools from the rebounding of drop-impact craters, or when a bubble bursts at it surface. The fastest jets are the narrowest and are a source of aerosols both from the ocean and a glass of champagne, of importance to climate and the olfactory senses. The most singular jets, which have a maximum velocity of 1374 m/s and diameter of 12 m under reduced ambient pressure, are produced when a small dimple forms at the crater bottom and rebounds without pinching off a small bubble. The rebounding of this dimple is purely inertial but highly sensitive on initial conditions. High-resolution numerical simulations reveal a new focusing mechanism, which drives the fastest jet within a converging conical channel, where an entrained air-sheet provides effective slip at the outer boundary of the conically converging flow into the jet. This configuration bypasses any viscous cut-off of the jetting speed and explains the extreme sensitivity observed in detailed experiments of the phenomenon.
Keywords
Cite
@article{arxiv.2209.03659,
title = {Conical-focusing: Mechanism for singular jetting from collapsing drop-impact craters},
author = {Yuan Si Tian and Zi Qiang Yang and Sigurður T. Thoroddsen},
journal= {arXiv preprint arXiv:2209.03659},
year = {2023}
}
Comments
5 pages, 5 figures. The supplementary file is attached in this link (https://github.com/ZIQIANG059/Supplementary-Material_Cone_Jetting/blob/main/Supplementary%20Material_Cone_Jetting.pdf)