Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment
The results of three-dimensional numerical simulations of drop collisions without the effect of a surrounding environment are presented. The numerical model is based on an Eulerian, finite-difference, Volume-of-Fluid method. Surface tension is included using the Continuum Surface Force method. Hea...
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Isfahan University of Technology
2012-01-01
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doaj-b70461884833435cb80a153be4c045f82020-11-24T21:31:46ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-36452012-01-01512337.Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert EnvironmentM.D SarokaN. AshgrizM. MovassatThe results of three-dimensional numerical simulations of drop collisions without the effect of a surrounding environment are presented. The numerical model is based on an Eulerian, finite-difference, Volume-of-Fluid method. Surface tension is included using the Continuum Surface Force method. Head-on collisions using equal size drops with three different fluid properties of water, mercury and tetradecane are presented. Various drop diameters ranging from 200 μm to 5 mm are considered. A separation criterion based upon deformation data is found. The lower critical Weber numbers are found for mercury and water drops while tetradecane drops did not result in separation for the range of Weber numbers considered. The effect of Reynolds number is investigated and regions of permanent coalescence and separation are plotted in the Weber-Reynolds number plane. The role of viscosity and its effect on dissipation is also investigated. Finally, the validity of the assumptions made in some of the collision models is assessed.http://jafmonline.net/JournalArchive/download?file_ID=15326&issue_ID=207Drop collision Drop coalescence Drop dynamics Volume of fluid method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M.D Saroka N. Ashgriz M. Movassat |
spellingShingle |
M.D Saroka N. Ashgriz M. Movassat Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment Journal of Applied Fluid Mechanics Drop collision Drop coalescence Drop dynamics Volume of fluid method |
author_facet |
M.D Saroka N. Ashgriz M. Movassat |
author_sort |
M.D Saroka |
title |
Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment |
title_short |
Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment |
title_full |
Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment |
title_fullStr |
Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment |
title_full_unstemmed |
Numerical Investigation of Head-on Binary Drop Collisions in a Dynamically Inert Environment |
title_sort |
numerical investigation of head-on binary drop collisions in a dynamically inert environment |
publisher |
Isfahan University of Technology |
series |
Journal of Applied Fluid Mechanics |
issn |
1735-3645 |
publishDate |
2012-01-01 |
description |
The results of three-dimensional numerical simulations of drop collisions without the effect of a surrounding
environment are presented. The numerical model is based on an Eulerian, finite-difference, Volume-of-Fluid method.
Surface tension is included using the Continuum Surface Force method. Head-on collisions using equal size drops
with three different fluid properties of water, mercury and tetradecane are presented. Various drop diameters
ranging from 200 μm to 5 mm are considered. A separation criterion based upon deformation data is found. The
lower critical Weber numbers are found for mercury and water drops while tetradecane drops did not result in
separation for the range of Weber numbers considered. The effect of Reynolds number is investigated and regions of
permanent coalescence and separation are plotted in the Weber-Reynolds number plane. The role of viscosity and its
effect on dissipation is also investigated. Finally, the validity of the assumptions made in some of the collision
models is assessed. |
topic |
Drop collision Drop coalescence Drop dynamics Volume of fluid method |
url |
http://jafmonline.net/JournalArchive/download?file_ID=15326&issue_ID=207 |
work_keys_str_mv |
AT mdsaroka numericalinvestigationofheadonbinarydropcollisionsinadynamicallyinertenvironment AT nashgriz numericalinvestigationofheadonbinarydropcollisionsinadynamicallyinertenvironment AT mmovassat numericalinvestigationofheadonbinarydropcollisionsinadynamicallyinertenvironment |
_version_ |
1725959874181857280 |