Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres

Natural convection heat transfer between two differentially heated concentric isothermal spheres utilizing micropolar fluid is investigated numerically. The two-dimensional governing equations are discretized using control volume method and solved by employing the alternating direction implicit sc...

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Main Authors: M. Khoshab, A.A Dehghan
Format: Article
Language:English
Published: Isfahan University of Technology 2011-01-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:http://jafmonline.net/JournalArchive/download?file_ID=15305&issue_ID=205
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spelling doaj-96a6f204cfc04d68b80be3f2b3d436712020-11-24T21:31:46ZengIsfahan University of Technology Journal of Applied Fluid Mechanics1735-36452011-01-01435159.Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal SpheresM. KhoshabA.A DehghanNatural convection heat transfer between two differentially heated concentric isothermal spheres utilizing micropolar fluid is investigated numerically. The two-dimensional governing equations are discretized using control volume method and solved by employing the alternating direction implicit scheme. Results are presented in the form of streamline and temperature patterns, local and average Nusselt numbers, over the heated and cooled boundaries for a wide range of Rayleigh numbers, Prandtl numbers and dimensionless vortex viscosity , v K dimensionless microinertia density , v B and microrotation boundary condition (n) for radius ratio of 2. The goal of this work is to investigate heat transfer characteristics of natural convection in the annulus between concentric spheres using micropolar theory. It is shown that micropolar fluids give lower heat transfer values than those of the Newtonian fluids. It is also found that the average Nusselt number increases with increasing Rayleigh and Prandtl numbers. On the other hand, it is disclosed that increasing the vortex viscosity reduces the heat transfer rate. The results are compared with the data available in the open literatures, and an excellent agreement was obtained. Finally, a correlation between the average Nusselt number, Rayleigh number and material parameter Kv is presented.http://jafmonline.net/JournalArchive/download?file_ID=15305&issue_ID=205Spheres Natural convection Micropolar fluid
collection DOAJ
language English
format Article
sources DOAJ
author M. Khoshab
A.A Dehghan
spellingShingle M. Khoshab
A.A Dehghan
Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
Journal of Applied Fluid Mechanics
Spheres
Natural convection
Micropolar fluid
author_facet M. Khoshab
A.A Dehghan
author_sort M. Khoshab
title Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
title_short Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
title_full Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
title_fullStr Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
title_full_unstemmed Numerical Simulation of Buoyancy-Induced Micropolar Fluid Flow between Two Concentric Isothermal Spheres
title_sort numerical simulation of buoyancy-induced micropolar fluid flow between two concentric isothermal spheres
publisher Isfahan University of Technology
series Journal of Applied Fluid Mechanics
issn 1735-3645
publishDate 2011-01-01
description Natural convection heat transfer between two differentially heated concentric isothermal spheres utilizing micropolar fluid is investigated numerically. The two-dimensional governing equations are discretized using control volume method and solved by employing the alternating direction implicit scheme. Results are presented in the form of streamline and temperature patterns, local and average Nusselt numbers, over the heated and cooled boundaries for a wide range of Rayleigh numbers, Prandtl numbers and dimensionless vortex viscosity , v K dimensionless microinertia density , v B and microrotation boundary condition (n) for radius ratio of 2. The goal of this work is to investigate heat transfer characteristics of natural convection in the annulus between concentric spheres using micropolar theory. It is shown that micropolar fluids give lower heat transfer values than those of the Newtonian fluids. It is also found that the average Nusselt number increases with increasing Rayleigh and Prandtl numbers. On the other hand, it is disclosed that increasing the vortex viscosity reduces the heat transfer rate. The results are compared with the data available in the open literatures, and an excellent agreement was obtained. Finally, a correlation between the average Nusselt number, Rayleigh number and material parameter Kv is presented.
topic Spheres
Natural convection
Micropolar fluid
url http://jafmonline.net/JournalArchive/download?file_ID=15305&issue_ID=205
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