Numerical Simulation of Rotating Vertical Bridgman Growth

The present work is proposed a numerical parametric study of heat and mass transfer in a rotating vertical cylinder during the solidification of a binary metallic alloy. The aim of this paper is to present an enthalpy formulation based on the fixed grid methodology for the numerical solution of conv...

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Main Authors: S. Nouri, P. Spiterri, A. Ghezal
Format: Article
Language:English
Published: Isfahan University of Technology 2016-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:http://jafmonline.net/JournalArchive/download?file_ID=40295&issue_ID=235
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spelling doaj-5ed899f3fd2942f8a477cf578fbb3be72020-11-24T23:56:27ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-35722016-01-019420632071.Numerical Simulation of Rotating Vertical Bridgman GrowthS. Nouri0P. Spiterri1A. Ghezal2usthbirit, enseeiht, ToulouseusthbThe present work is proposed a numerical parametric study of heat and mass transfer in a rotating vertical cylinder during the solidification of a binary metallic alloy. The aim of this paper is to present an enthalpy formulation based on the fixed grid methodology for the numerical solution of convective-diffusion during the phase change in the case of the steady crucible rotation. The extended Darcy model including the time derivative and Coriolis terms was applied as momentum equation. It was found that the buoyancy driven flow and solute distribution can be affected significantly by the rotating cylinder. The problem is governed by the Navier-Stokes equations coupled with the conservation laws of energy and solute. The resulting system was discretized by the control volume method and solved by the SIMPLER algorithm proposed by Patankar. A computer code was developed and validated by comparison with previous studies. It can be observed that the forced convection introduced by rotation, dramatically changes the flow and solute distribution at the interface (liquid-mushy zone). The effect of Reynolds number on the Nusselt number, flow and solute distribution is presented and discussed.http://jafmonline.net/JournalArchive/download?file_ID=40295&issue_ID=235Vertical Solidification; Finite Volume method; Numerical analysis; Heat and mass transfer; Phase Change; Bridgman Growth.
collection DOAJ
language English
format Article
sources DOAJ
author S. Nouri
P. Spiterri
A. Ghezal
spellingShingle S. Nouri
P. Spiterri
A. Ghezal
Numerical Simulation of Rotating Vertical Bridgman Growth
Journal of Applied Fluid Mechanics
Vertical Solidification; Finite Volume method; Numerical analysis; Heat and mass transfer; Phase Change; Bridgman Growth.
author_facet S. Nouri
P. Spiterri
A. Ghezal
author_sort S. Nouri
title Numerical Simulation of Rotating Vertical Bridgman Growth
title_short Numerical Simulation of Rotating Vertical Bridgman Growth
title_full Numerical Simulation of Rotating Vertical Bridgman Growth
title_fullStr Numerical Simulation of Rotating Vertical Bridgman Growth
title_full_unstemmed Numerical Simulation of Rotating Vertical Bridgman Growth
title_sort numerical simulation of rotating vertical bridgman growth
publisher Isfahan University of Technology
series Journal of Applied Fluid Mechanics
issn 1735-3572
publishDate 2016-01-01
description The present work is proposed a numerical parametric study of heat and mass transfer in a rotating vertical cylinder during the solidification of a binary metallic alloy. The aim of this paper is to present an enthalpy formulation based on the fixed grid methodology for the numerical solution of convective-diffusion during the phase change in the case of the steady crucible rotation. The extended Darcy model including the time derivative and Coriolis terms was applied as momentum equation. It was found that the buoyancy driven flow and solute distribution can be affected significantly by the rotating cylinder. The problem is governed by the Navier-Stokes equations coupled with the conservation laws of energy and solute. The resulting system was discretized by the control volume method and solved by the SIMPLER algorithm proposed by Patankar. A computer code was developed and validated by comparison with previous studies. It can be observed that the forced convection introduced by rotation, dramatically changes the flow and solute distribution at the interface (liquid-mushy zone). The effect of Reynolds number on the Nusselt number, flow and solute distribution is presented and discussed.
topic Vertical Solidification; Finite Volume method; Numerical analysis; Heat and mass transfer; Phase Change; Bridgman Growth.
url http://jafmonline.net/JournalArchive/download?file_ID=40295&issue_ID=235
work_keys_str_mv AT snouri numericalsimulationofrotatingverticalbridgmangrowth
AT pspiterri numericalsimulationofrotatingverticalbridgmangrowth
AT aghezal numericalsimulationofrotatingverticalbridgmangrowth
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