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Autori principali: Kulkarni, Varun, Sojka, Paul E.
Natura: Preprint
Pubblicazione: 2022
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Accesso online:https://arxiv.org/abs/2204.06036
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author Kulkarni, Varun
Sojka, Paul E.
author_facet Kulkarni, Varun
Sojka, Paul E.
contents This work examines the breakup of a single drop of various low viscosity fluids as it deforms in the presence of continuous horizontal air jet. Such a fragmentation typically occurs after the bulk liquid has disintegrated upon exiting the atomizer and is in the form of an ensemble of drops which undergo further breakup. The drop deformation and its eventual disintegration is important in evaluating the efficacy of a particular industrial process, be it combustion in automobile engines or pesticide spraying in agricultural applications. The interplay between competing influences of surface tension and aerodynamic disruptive forces is represented by the Weber number, $We$, and Ohnesorge number, $Oh$, and used to describe the breakup morphology. The breakup pattern considered in our study corresponds to that of a bag attached to a toroidal ring which occurs from $12 < We < 16$. We aim to address several issues connected with this breakup process and their dependence on $We$ and $Oh$ which have been hitherto unexplored. The $We$ boundary at which breakup begins is theoretically determined and the expression obtained, $We = 12(1 + 2/3Oh^2)$, is found to match well with experimental data available in literature. An exponential growth in the radial extent of the deformed drop and the streamline dimension of the bag is predicted by a theoretical model and confirmed by experimental findings. These quantities are observed to strongly depend on $We$. However, their dependence on $Oh$ is weak.
format Preprint
id arxiv_https___arxiv_org_abs_2204_06036
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Bag breakup of low viscosity drops in the presence of a continuous air jet
Kulkarni, Varun
Sojka, Paul E.
Fluid Dynamics
This work examines the breakup of a single drop of various low viscosity fluids as it deforms in the presence of continuous horizontal air jet. Such a fragmentation typically occurs after the bulk liquid has disintegrated upon exiting the atomizer and is in the form of an ensemble of drops which undergo further breakup. The drop deformation and its eventual disintegration is important in evaluating the efficacy of a particular industrial process, be it combustion in automobile engines or pesticide spraying in agricultural applications. The interplay between competing influences of surface tension and aerodynamic disruptive forces is represented by the Weber number, $We$, and Ohnesorge number, $Oh$, and used to describe the breakup morphology. The breakup pattern considered in our study corresponds to that of a bag attached to a toroidal ring which occurs from $12 < We < 16$. We aim to address several issues connected with this breakup process and their dependence on $We$ and $Oh$ which have been hitherto unexplored. The $We$ boundary at which breakup begins is theoretically determined and the expression obtained, $We = 12(1 + 2/3Oh^2)$, is found to match well with experimental data available in literature. An exponential growth in the radial extent of the deformed drop and the streamline dimension of the bag is predicted by a theoretical model and confirmed by experimental findings. These quantities are observed to strongly depend on $We$. However, their dependence on $Oh$ is weak.
title Bag breakup of low viscosity drops in the presence of a continuous air jet
topic Fluid Dynamics
url https://arxiv.org/abs/2204.06036