Numerical analysis of ligament instability and breakup in shear flow
H. Yanaoka, K. Nakayama

TL;DR
This paper presents a numerical study on how shear flow influences ligament instability, breakup dynamics, and droplet size, revealing that increased shear accelerates breakup and results in smaller, more uniform droplets.
Contribution
It introduces a detailed numerical analysis of ligament breakup under shear flow, highlighting the effects of shear on instability growth, breakup time, and droplet size, which were not fully understood before.
Findings
Shear flow increases ligament instability and breakup rate.
Higher shear leads to smaller, more uniform droplets.
Growth rate exceeds theoretical predictions under shear.
Abstract
In this study, we perform a numerical analysis of the instability of a ligament in shear flow and investigate the effects of air-liquid shear on the growth rate of the ligament interface, breakup time, and droplet diameter formed by the breakup. The ligament is stretched in the flow direction by the shearing of airflow. Furthermore, as the influence of the shear flow increases, the ligament becomes deformed into a liquid sheet, and a perforation forms at the center of the liquid sheet. The liquid sheet breaks up due to the growth of the perforation and contracts under the influence of surface tension, forming two ligaments with diameters smaller than that of the original ligament. The shearing of the airflow causes the original ligament to elongate, and the cross-section of the ligament becomes elliptical, which increases instability. As a result, the growth rate of the ligament exceeds…
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