dc.contributor.author |
Juggurnath, D.
|
en |
dc.contributor.author |
Dauhoo, M.Z.
|
en |
dc.contributor.author |
Elahee, M.K.
|
en |
dc.contributor.author |
Khoodaruth, Abdel
|
en |
dc.contributor.author |
Osowade, A.E.
|
en |
dc.contributor.author |
Olakoyejo, O.T.
|
en |
dc.contributor.author |
Obayopo, Surajudeen Olanrewaju
|
en |
dc.contributor.author |
Adelaja, A.O.
|
en |
dc.date.accessioned |
2017-09-19T12:48:20Z |
|
dc.date.available |
2017-09-19T12:48:20Z |
|
dc.date.issued |
2017 |
en |
dc.description |
Papers presented at the 13th International Conference on Heat Transfer, Fluid Mechanics and Thermodynamics, Portoroz, Slovenia on 17-19 July 2017 . |
en |
dc.description.abstract |
Flow patterns depend on the mass flux and phase composition
of the flow and also on the inclination angle of the tube. This
work analyses the different flow patterns taking place in an
inclined tube at 30 numerically. Both upward and downward
flows are considered. The simulations of air-water flow in a
pipe of diameter 0:051m and length 2m have been carried out
using one-fluid model. The simulated flow patterns are slug,
plug, stratified and bubbly flow. The calculated flow regimes
are compared with data taken from the well-known Barnea flow
pattern map. ANSYS-FLUENT 16.0 is used to solve the mass
and momentum equations using second-order upwind scheme.
The model takes into account the influence of gravitational force
and the surface tension on the flow. A piecewise linear interface
reconstruction based on Youngs's VOF is used. The simulation
is carried out for the following combinations of superficial air
velocities and superficial water velocities of (0.05, 0.1), (1.0,0.5)
and (0.5,9.0) at an inclination angle of 30 and of (1.0, 0.1),
(12,5) and (1.0,8.0) at an inclination angle of 30 . The volume
fraction is predicted. To the authors’ knowledge, it is the first
time that air-water flow as predicted by Barnea flow pattern
map is being reproduced numerically and used to validate the
VOF method. The results from FLUENT are compared with
the experimental data from the well-known Barnea flow pattern
map. The model predictions showed good agreement with
experimental data obtained at both angles of inclination. |
en |
dc.description.sponsorship |
International centre for heat and mass transfer. |
en |
dc.description.sponsorship |
American society of thermal and fluids engineers. |
en |
dc.format.extent |
8 pages |
en |
dc.format.medium |
PDF |
en |
dc.identifier.uri |
http://hdl.handle.net/2263/62333 |
|
dc.language.iso |
en |
en |
dc.publisher |
HEFAT |
en |
dc.rights |
University of Pretoria |
en |
dc.subject |
Water-air flow |
en |
dc.subject |
Inclined pipe |
en |
dc.subject |
CFD simulations |
en |
dc.title |
Simulations of air-water two-phase flow in an inclined pipe |
en |
dc.type |
Presentation |
en |