Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity

This paper deals with a numerical simulation of natural convection flows in a prismatic cavity. This configuration represents solar energy collectors, conventional attic spaces of greenhouses and buildings with pitched roofs. The third dimension of the cavity is considered long enough for the flow...

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Main Authors: A. Walid, O. Ahmed
Format: Article
Language:English
Published: Isfahan University of Technology 2010-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:http://jafmonline.net/JournalArchive/download?file_ID=15260&issue_ID=202
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spelling doaj-ebc77edf0bbf4726b51f7b8c233b100d2020-11-24T23:56:27ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-36452010-01-01327786.Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic CavityA. WalidO. AhmedThis paper deals with a numerical simulation of natural convection flows in a prismatic cavity. This configuration represents solar energy collectors, conventional attic spaces of greenhouses and buildings with pitched roofs. The third dimension of the cavity is considered long enough for the flow to be considered 2D. The base is submitted to a uniform heat flux, the two top inclined walls are symmetrically cooled and the two vertical walls are assumed to be perfect thermal insulators. The aim of the study is to examine the thermal exchange by natural convection and effects of buoyancy forces on flow structure. The study provides useful information on the flow structure sensitivity to the governing parameters, the Rayleigh number (Ra) and the aspect ratio of the cavity. The hydrodynamic and thermal fields, the local Nusselt number, the temperature profile at the bottom and at the center of the cavity are investigated for a large range of Ra. The effect of the aspect ratio is examined for different values of Ra. Based on the authors’ knowledge, no previous results on natural convection in this geometry exist.http://jafmonline.net/JournalArchive/download?file_ID=15260&issue_ID=202Rayleigh number Nusselt number natural convection prismatic cavity heat transfer
collection DOAJ
language English
format Article
sources DOAJ
author A. Walid
O. Ahmed
spellingShingle A. Walid
O. Ahmed
Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
Journal of Applied Fluid Mechanics
Rayleigh number
Nusselt number
natural convection
prismatic cavity
heat transfer
author_facet A. Walid
O. Ahmed
author_sort A. Walid
title Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
title_short Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
title_full Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
title_fullStr Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
title_full_unstemmed Buoyancy Induced Heat Transfer and Fluid Flow inside a Prismatic Cavity
title_sort buoyancy induced heat transfer and fluid flow inside a prismatic cavity
publisher Isfahan University of Technology
series Journal of Applied Fluid Mechanics
issn 1735-3645
publishDate 2010-01-01
description This paper deals with a numerical simulation of natural convection flows in a prismatic cavity. This configuration represents solar energy collectors, conventional attic spaces of greenhouses and buildings with pitched roofs. The third dimension of the cavity is considered long enough for the flow to be considered 2D. The base is submitted to a uniform heat flux, the two top inclined walls are symmetrically cooled and the two vertical walls are assumed to be perfect thermal insulators. The aim of the study is to examine the thermal exchange by natural convection and effects of buoyancy forces on flow structure. The study provides useful information on the flow structure sensitivity to the governing parameters, the Rayleigh number (Ra) and the aspect ratio of the cavity. The hydrodynamic and thermal fields, the local Nusselt number, the temperature profile at the bottom and at the center of the cavity are investigated for a large range of Ra. The effect of the aspect ratio is examined for different values of Ra. Based on the authors’ knowledge, no previous results on natural convection in this geometry exist.
topic Rayleigh number
Nusselt number
natural convection
prismatic cavity
heat transfer
url http://jafmonline.net/JournalArchive/download?file_ID=15260&issue_ID=202
work_keys_str_mv AT awalid buoyancyinducedheattransferandfluidflowinsideaprismaticcavity
AT oahmed buoyancyinducedheattransferandfluidflowinsideaprismaticcavity
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