Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field

The present study deals with the analysis of the effects of radiative heat transfer of micropolar fluid flow over a porous and stretching sheet in the presence of magnetic field. The dynamic viscosity and thermal conductivity coefficient have formulated by temperature-dependent relations to obtain m...

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Main Authors: Reza Keimanesh, Cyrus Aghanajafi
Format: Article
Language:English
Published: Semnan University 2016-04-01
Series:Journal of Heat and Mass Transfer Research
Subjects:
Online Access:https://jhmtr.semnan.ac.ir/article_403_47db1aa2fb48112697023ca40e1ffaeb.pdf
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author Reza Keimanesh
Cyrus Aghanajafi
author_facet Reza Keimanesh
Cyrus Aghanajafi
author_sort Reza Keimanesh
collection DOAJ
description The present study deals with the analysis of the effects of radiative heat transfer of micropolar fluid flow over a porous and stretching sheet in the presence of magnetic field. The dynamic viscosity and thermal conductivity coefficient have formulated by temperature-dependent relations to obtain more exact results. The flow is supposed two-dimensional, incompressible, steady and laminar and the applied magnetic field is assumed uniform. On the other hand, the velocity of the isothermal stretching sheet varies linearly with the distance from a fixed point on the sheet. The governing equations have extracted using the theory of micropolar fluid and the boundary layer approximation. Then they have been solved by similarity solution relationships, shooting method and fourth-order Runge-Kutta method. The results express that the presence and increase of variable thermal conductivity parameter, magnetism, radiation and variable viscosity parameter cause to decrease of heat transfer from the sheet, while increase of material parameter, Prandtl number and suction parameter increase the rate of heat transfer from the sheet. Also the values of dimensionless velocity are enhanced by increase of variable thermal conductivity parameter, material parameter and radiation parameter. On the other hand, the values of dimensionless angular velocity are completely influenced by the values of the velocity gradient.
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spelling doaj.art-da8483ee047541f99b2978a1ce9e33c32024-03-17T08:03:14ZengSemnan UniversityJournal of Heat and Mass Transfer Research2345-508X2383-30682016-04-013191910.22075/jhmtr.2016.403403Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic FieldReza Keimanesh0Cyrus Aghanajafi1M.Sc. of Mechanical Engineering, K. N. Toosi University of Technology,Tehran, IranFaculty of Mechanical Engineering, K. N. Toosi University of Technology,Tehran, IranThe present study deals with the analysis of the effects of radiative heat transfer of micropolar fluid flow over a porous and stretching sheet in the presence of magnetic field. The dynamic viscosity and thermal conductivity coefficient have formulated by temperature-dependent relations to obtain more exact results. The flow is supposed two-dimensional, incompressible, steady and laminar and the applied magnetic field is assumed uniform. On the other hand, the velocity of the isothermal stretching sheet varies linearly with the distance from a fixed point on the sheet. The governing equations have extracted using the theory of micropolar fluid and the boundary layer approximation. Then they have been solved by similarity solution relationships, shooting method and fourth-order Runge-Kutta method. The results express that the presence and increase of variable thermal conductivity parameter, magnetism, radiation and variable viscosity parameter cause to decrease of heat transfer from the sheet, while increase of material parameter, Prandtl number and suction parameter increase the rate of heat transfer from the sheet. Also the values of dimensionless velocity are enhanced by increase of variable thermal conductivity parameter, material parameter and radiation parameter. On the other hand, the values of dimensionless angular velocity are completely influenced by the values of the velocity gradient.https://jhmtr.semnan.ac.ir/article_403_47db1aa2fb48112697023ca40e1ffaeb.pdfmicropolar fluidradiationmagnetic fieldviscositythermal conductivity
spellingShingle Reza Keimanesh
Cyrus Aghanajafi
Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
Journal of Heat and Mass Transfer Research
micropolar fluid
radiation
magnetic field
viscosity
thermal conductivity
title Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
title_full Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
title_fullStr Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
title_full_unstemmed Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
title_short Analysis of Radiation Heat Transfer of a Micropolar Fluid with Variable Properties over a Stretching Sheet in the Presence of Magnetic Field
title_sort analysis of radiation heat transfer of a micropolar fluid with variable properties over a stretching sheet in the presence of magnetic field
topic micropolar fluid
radiation
magnetic field
viscosity
thermal conductivity
url https://jhmtr.semnan.ac.ir/article_403_47db1aa2fb48112697023ca40e1ffaeb.pdf
work_keys_str_mv AT rezakeimanesh analysisofradiationheattransferofamicropolarfluidwithvariablepropertiesoverastretchingsheetinthepresenceofmagneticfield
AT cyrusaghanajafi analysisofradiationheattransferofamicropolarfluidwithvariablepropertiesoverastretchingsheetinthepresenceofmagneticfield