Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation

The effects of thermal radiation and viscous dissipation on the flow and heat transfer of a hybrid nanofluid (Cu–Al2O3/water) past a circular cylinder are investigated for both assisting and opposing flows. The numerical results reveal that the flow and energy fields adjacent to the rear stagnation...

Full description

Bibliographic Details
Main Authors: Nepal Chandra Roy, Litan Kumar Saha, Mohsen Sheikholeslami
Format: Article
Language:English
Published: AIP Publishing LLC 2020-09-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/5.0021258
id doaj-f0bb75e058ee4a13bf63897850498940
record_format Article
spelling doaj-f0bb75e058ee4a13bf638978504989402020-11-25T03:58:29ZengAIP Publishing LLCAIP Advances2158-32262020-09-01109095208095208-1210.1063/5.0021258Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipationNepal Chandra Roy0Litan Kumar Saha1Mohsen Sheikholeslami2Department of Mathematics, University of Dhaka, Dhaka 1000, BangladeshDepartment of Applied Mathematics, University of Dhaka, Dhaka 1000, BangladeshDepartment of Mechanical Engineering, Babol Noshirvani University of Technology, Babol, IranThe effects of thermal radiation and viscous dissipation on the flow and heat transfer of a hybrid nanofluid (Cu–Al2O3/water) past a circular cylinder are investigated for both assisting and opposing flows. The numerical results reveal that the flow and energy fields adjacent to the rear stagnation point are strongly affected by the opposing flow rather than the assisting flow. For the assisting flow, the size of the vortex increases for the higher volume fraction of Cu nanoparticles and Reynolds number, but it decreases with an increase in the Eckert number, conduction–radiation parameter, surface temperature parameter, and Grashof number. In the case of the opposing flow, the converse scenario is observed for all parameters except the Eckert number. For a certain set of parameters, the size of the vortex for the assisting flow is always smaller than that for the opposing flow. In general, the heat transfer for the assisting flow is stronger than that for the opposing flow. For both types of flows, the Nusselt number significantly increases owing to the increase in the volume fraction of Cu nanoparticles and Reynolds number; however, it diminishes for the higher values of the Eckert number, conduction–radiation parameter, and surface temperature parameter. It is remarkable that the Nusselt number for the Cu–Al2O3/water hybrid nanofluid is found to be higher than that for the Al2O3/water nanofluid.http://dx.doi.org/10.1063/5.0021258
collection DOAJ
language English
format Article
sources DOAJ
author Nepal Chandra Roy
Litan Kumar Saha
Mohsen Sheikholeslami
spellingShingle Nepal Chandra Roy
Litan Kumar Saha
Mohsen Sheikholeslami
Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
AIP Advances
author_facet Nepal Chandra Roy
Litan Kumar Saha
Mohsen Sheikholeslami
author_sort Nepal Chandra Roy
title Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
title_short Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
title_full Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
title_fullStr Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
title_full_unstemmed Heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
title_sort heat transfer of a hybrid nanofluid past a circular cylinder in the presence of thermal radiation and viscous dissipation
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-09-01
description The effects of thermal radiation and viscous dissipation on the flow and heat transfer of a hybrid nanofluid (Cu–Al2O3/water) past a circular cylinder are investigated for both assisting and opposing flows. The numerical results reveal that the flow and energy fields adjacent to the rear stagnation point are strongly affected by the opposing flow rather than the assisting flow. For the assisting flow, the size of the vortex increases for the higher volume fraction of Cu nanoparticles and Reynolds number, but it decreases with an increase in the Eckert number, conduction–radiation parameter, surface temperature parameter, and Grashof number. In the case of the opposing flow, the converse scenario is observed for all parameters except the Eckert number. For a certain set of parameters, the size of the vortex for the assisting flow is always smaller than that for the opposing flow. In general, the heat transfer for the assisting flow is stronger than that for the opposing flow. For both types of flows, the Nusselt number significantly increases owing to the increase in the volume fraction of Cu nanoparticles and Reynolds number; however, it diminishes for the higher values of the Eckert number, conduction–radiation parameter, and surface temperature parameter. It is remarkable that the Nusselt number for the Cu–Al2O3/water hybrid nanofluid is found to be higher than that for the Al2O3/water nanofluid.
url http://dx.doi.org/10.1063/5.0021258
work_keys_str_mv AT nepalchandraroy heattransferofahybridnanofluidpastacircularcylinderinthepresenceofthermalradiationandviscousdissipation
AT litankumarsaha heattransferofahybridnanofluidpastacircularcylinderinthepresenceofthermalradiationandviscousdissipation
AT mohsensheikholeslami heattransferofahybridnanofluidpastacircularcylinderinthepresenceofthermalradiationandviscousdissipation
_version_ 1724457046062923776