Bubble entrainment in turbulent jets leaping from liquid surface

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Lin, Fangye, Li, Mingbo
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911201851604992
author Lin, Fangye
Li, Mingbo
author_facet Lin, Fangye
Li, Mingbo
contents We investigate the phenomenon of air entrainment in turbulent water jets exiting a pool near the free surface. Our experimental results reveal that bubble entrainment occurs only within a specific region close to the point where the jet exits the water and is dictated solely by the jet's exit velocity, rather than the Reynolds number. The morphology of the jet above the pool surface, influenced predominantly by the Froude number or the injection angle, classifies the flow into two regimes: curtain jet and column jet. However, variations in jet morphology have minimal impact on the critical velocity required for bubble entrainment. Our findings suggest that bubble entrainment is driven by the dynamic interplay of shear forces and instabilities. As the jet exits the nozzle, it interacts with the surrounding fluids, amplifying instabilities through Kelvin-Helmholtz mechanisms. These disturbances generate intense fluctuations on the jet surface, creating localized low-pressure zones that trap air and entrain bubbles. As the jet progresses further into the air, capillary forces dampen surface instabilities, diminishing the jet's capacity to sustain bubble entrainment at longer distances. This study offers new insights into the mechanics of air entrainment in turbulent water jets, emphasizing the role of injection velocity and instabilities in the entrainment process.
format Preprint
id arxiv_https___arxiv_org_abs_2510_09067
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Bubble entrainment in turbulent jets leaping from liquid surface
Lin, Fangye
Li, Mingbo
Fluid Dynamics
We investigate the phenomenon of air entrainment in turbulent water jets exiting a pool near the free surface. Our experimental results reveal that bubble entrainment occurs only within a specific region close to the point where the jet exits the water and is dictated solely by the jet's exit velocity, rather than the Reynolds number. The morphology of the jet above the pool surface, influenced predominantly by the Froude number or the injection angle, classifies the flow into two regimes: curtain jet and column jet. However, variations in jet morphology have minimal impact on the critical velocity required for bubble entrainment. Our findings suggest that bubble entrainment is driven by the dynamic interplay of shear forces and instabilities. As the jet exits the nozzle, it interacts with the surrounding fluids, amplifying instabilities through Kelvin-Helmholtz mechanisms. These disturbances generate intense fluctuations on the jet surface, creating localized low-pressure zones that trap air and entrain bubbles. As the jet progresses further into the air, capillary forces dampen surface instabilities, diminishing the jet's capacity to sustain bubble entrainment at longer distances. This study offers new insights into the mechanics of air entrainment in turbulent water jets, emphasizing the role of injection velocity and instabilities in the entrainment process.
title Bubble entrainment in turbulent jets leaping from liquid surface
topic Fluid Dynamics
url https://arxiv.org/abs/2510.09067