Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid

This article presents a three-dimensional numerical investigation of heat and mass transfers and fluid flow in a cavity filled with an Al<sub>2</sub>O<sub>3</sub>/water micropolar fluid under uniform magnetic field. To solve the governing non-dimensional equations, Finite Vol...

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Main Authors: Awatef Abidi, Zehba Raizah, Jamel Madiouli
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/8/12/2342
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spelling doaj-b3203d9c584c4bc7a2c54b13417d528c2020-11-25T00:40:27ZengMDPI AGApplied Sciences2076-34172018-11-01812234210.3390/app8122342app8122342Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar NanofluidAwatef Abidi0Zehba Raizah1Jamel Madiouli2Physics Department, College of Sciences Abha, King Khalid University, Abha 61421, Saudi ArabiaMathematics Department, College of Science Abha, King Khalid University, Abha 61421, Saudi ArabiaMechanical Engineering Department, College of Engineering Abha, King Khalid University, Abha 61421, Saudi ArabiaThis article presents a three-dimensional numerical investigation of heat and mass transfers and fluid flow in a cavity filled with an Al<sub>2</sub>O<sub>3</sub>/water micropolar fluid under uniform magnetic field. To solve the governing non-dimensional equations, Finite Volume Method (FVM) based on 3-D vorticity-vector potential formulation has been employed. The effects of various parameters such as buoyancy ratio (&#8722;2 &#8804; N &#8804; 0), Rayleigh number (10<sup>3</sup> &#8804; Ra &#8804; 10<sup>5</sup>), Hartmann number (0&#8804; Ha&#8804; 60), nanoparticles volume fraction (0 &#8804; &#966; &#8804; 0.06) and micropolar material parameter (0&#8804; K&#8804; 5) on flow structure and on heat and mass transfers are presented. The results illustrate that for the micropolar nanofluid model, both heat and mass transfer rates and three-dimensional character of the flow are smaller when compared with the pure nanofluid model. It is also observed that increase and decrease in heat and mass transfer rates is experienced due to increase in Rayleigh number and Hartmann number, respectively. It is also noted that increase in vortex viscosity parameter reduces the average heat and mass transfer rates and is more evident when the magnetic field is imposed. Combined effects of magnetic field and nanoparticles volume fraction on heat and mass transfers are also explored.https://www.mdpi.com/2076-3417/8/12/2342magnetic fielddouble-diffusionnatural convectionthree-dimensional cavitymicropolar nanofluid
collection DOAJ
language English
format Article
sources DOAJ
author Awatef Abidi
Zehba Raizah
Jamel Madiouli
spellingShingle Awatef Abidi
Zehba Raizah
Jamel Madiouli
Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
Applied Sciences
magnetic field
double-diffusion
natural convection
three-dimensional cavity
micropolar nanofluid
author_facet Awatef Abidi
Zehba Raizah
Jamel Madiouli
author_sort Awatef Abidi
title Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
title_short Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
title_full Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
title_fullStr Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
title_full_unstemmed Magnetic Field Effect on the Double Diffusive Natural Convection in Three-Dimensional Cavity Filled with Micropolar Nanofluid
title_sort magnetic field effect on the double diffusive natural convection in three-dimensional cavity filled with micropolar nanofluid
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2018-11-01
description This article presents a three-dimensional numerical investigation of heat and mass transfers and fluid flow in a cavity filled with an Al<sub>2</sub>O<sub>3</sub>/water micropolar fluid under uniform magnetic field. To solve the governing non-dimensional equations, Finite Volume Method (FVM) based on 3-D vorticity-vector potential formulation has been employed. The effects of various parameters such as buoyancy ratio (&#8722;2 &#8804; N &#8804; 0), Rayleigh number (10<sup>3</sup> &#8804; Ra &#8804; 10<sup>5</sup>), Hartmann number (0&#8804; Ha&#8804; 60), nanoparticles volume fraction (0 &#8804; &#966; &#8804; 0.06) and micropolar material parameter (0&#8804; K&#8804; 5) on flow structure and on heat and mass transfers are presented. The results illustrate that for the micropolar nanofluid model, both heat and mass transfer rates and three-dimensional character of the flow are smaller when compared with the pure nanofluid model. It is also observed that increase and decrease in heat and mass transfer rates is experienced due to increase in Rayleigh number and Hartmann number, respectively. It is also noted that increase in vortex viscosity parameter reduces the average heat and mass transfer rates and is more evident when the magnetic field is imposed. Combined effects of magnetic field and nanoparticles volume fraction on heat and mass transfers are also explored.
topic magnetic field
double-diffusion
natural convection
three-dimensional cavity
micropolar nanofluid
url https://www.mdpi.com/2076-3417/8/12/2342
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AT zehbaraizah magneticfieldeffectonthedoublediffusivenaturalconvectioninthreedimensionalcavityfilledwithmicropolarnanofluid
AT jamelmadiouli magneticfieldeffectonthedoublediffusivenaturalconvectioninthreedimensionalcavityfilledwithmicropolarnanofluid
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