Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface

This study deals with natural convection unsteady flow of CNTs−Fe3O4/water hybrid nanofluids due to stretching surface embedded in a porous medium. Both hybrid nanoparticles of SWCNTs−Fe3O4 and MWCNTs−Fe3O4 are used with water as base fluid. Effects of hybrid nanoparticles volume friction, second-or...

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Main Authors: Ayele Tulu, Wubshet Ibrahim
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2021/8407194
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spelling doaj-61806f86dd824b76a195e100bf0f7d442021-03-29T00:09:53ZengHindawi LimitedMathematical Problems in Engineering1563-51472021-01-01202110.1155/2021/8407194Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching SurfaceAyele Tulu0Wubshet Ibrahim1Department of MathematicsDepartment of MathematicsThis study deals with natural convection unsteady flow of CNTs−Fe3O4/water hybrid nanofluids due to stretching surface embedded in a porous medium. Both hybrid nanoparticles of SWCNTs−Fe3O4 and MWCNTs−Fe3O4 are used with water as base fluid. Effects of hybrid nanoparticles volume friction, second-order velocity slip condition, and temperature-dependent viscosity are investigated. The governing problem of flow is solved numerically employing spectral quasilinearization method (SQLM). The results are presented and discussed via embedded parameters using graphs and tables. The results disclose that the thermal conductivity of CNTs−Fe3O4/H2O hybrid nanofluids is higher than that of CNTs−H2O nanofluids with higher value of hybrid nanoparticle volume fraction. Also, the results show that momentum boundary layer reduces while the thermal boundary layer gros with higher values of temperature-dependent viscosity and second-order velocity slip parameters. The skin friction coefficient improves, and the local heat transfer rate decreases with higher values of nanoparticle volume fraction, temperature-dependent viscosity, and second-order velocity slip parameters. Furthermore, more skin friction coefficients and lower local heat transfer rate are reported in the CNTs−Fe3O4/H2O hybrid nanofluid than in the CNTs−H2O nanofluid. Thus, the obtained results are promising for the application of hybrid nanofluids in the nanotechnology and biomedicine sectors.http://dx.doi.org/10.1155/2021/8407194
collection DOAJ
language English
format Article
sources DOAJ
author Ayele Tulu
Wubshet Ibrahim
spellingShingle Ayele Tulu
Wubshet Ibrahim
Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
Mathematical Problems in Engineering
author_facet Ayele Tulu
Wubshet Ibrahim
author_sort Ayele Tulu
title Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
title_short Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
title_full Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
title_fullStr Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
title_full_unstemmed Effects of Second-Order Slip Flow and Variable Viscosity on Natural Convection Flow of CNTs−Fe3O4/Water Hybrid Nanofluids due to Stretching Surface
title_sort effects of second-order slip flow and variable viscosity on natural convection flow of cnts−fe3o4/water hybrid nanofluids due to stretching surface
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1563-5147
publishDate 2021-01-01
description This study deals with natural convection unsteady flow of CNTs−Fe3O4/water hybrid nanofluids due to stretching surface embedded in a porous medium. Both hybrid nanoparticles of SWCNTs−Fe3O4 and MWCNTs−Fe3O4 are used with water as base fluid. Effects of hybrid nanoparticles volume friction, second-order velocity slip condition, and temperature-dependent viscosity are investigated. The governing problem of flow is solved numerically employing spectral quasilinearization method (SQLM). The results are presented and discussed via embedded parameters using graphs and tables. The results disclose that the thermal conductivity of CNTs−Fe3O4/H2O hybrid nanofluids is higher than that of CNTs−H2O nanofluids with higher value of hybrid nanoparticle volume fraction. Also, the results show that momentum boundary layer reduces while the thermal boundary layer gros with higher values of temperature-dependent viscosity and second-order velocity slip parameters. The skin friction coefficient improves, and the local heat transfer rate decreases with higher values of nanoparticle volume fraction, temperature-dependent viscosity, and second-order velocity slip parameters. Furthermore, more skin friction coefficients and lower local heat transfer rate are reported in the CNTs−Fe3O4/H2O hybrid nanofluid than in the CNTs−H2O nanofluid. Thus, the obtained results are promising for the application of hybrid nanofluids in the nanotechnology and biomedicine sectors.
url http://dx.doi.org/10.1155/2021/8407194
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