Bubble nucleation and jetting inside a millimetric droplet
Juan Manuel Rossell\'o, Hendrik Reese, K. Ashoke Raman, Claus-Dieter, Ohl

TL;DR
This study combines experiments and simulations to analyze laser-induced bubble nucleation and dynamics inside free-falling millimetric droplets, revealing cavitation thresholds, jetting behavior, and surface instabilities.
Contribution
It introduces a comprehensive approach to understanding bubble behavior inside droplets, including cavitation thresholds, jetting dynamics, and surface instabilities, with quantitative comparisons to flat boundary cases.
Findings
Identification of cavitation threshold values.
Observation of bubble-induced surface instabilities.
Quantitative similarity between bubble behavior near curved and flat boundaries.
Abstract
In this work, we present experiments and simulations on the nucleation and successive dynamics of laser-induced bubbles inside liquid droplets in free-fall motion, i.e. a case with a free boundary in all directions. The droplets of a millimetric size have a nearly spherical shape by the moment the bubble is nucleated. We have investigated the nucleation of secondary bubbles induced by the rarefaction wave that is produced when the shock wave emitted by the laser-induced plasma reflects at the drop surface. Interestingly, three-dimensional clusters of cavitation bubbles are observed. Their shape is compared with the negative pressure distribution computed with a CFD model and allows us to estimate a cavitation threshold value. High-speed recordings of the drop/bubble dynamics are complemented by the velocity and pressure fields simulated for the same initial conditions. The effect of the…
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Taxonomy
TopicsLaser-induced spectroscopy and plasma · Fluid Dynamics and Heat Transfer
