Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation

An investigation of the boundary layer nanofluids flow over a porous wedge in the presence of uniform transverse magnetic field and thermal radiation energy has been analyzed. Water and seawater based nanofluid containing copper, aluminum oxide and Single Walled Carbon nanotubes (SWCNTs) is taken in...

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Main Authors: R. Kandasamy, Vibhu Vignesh, Ashwin Kumar, Sulaiman Haji Hasan, Norasikin Mat Isa
Format: Article
Language:English
Published: Elsevier 2018-12-01
Series:Ain Shams Engineering Journal
Online Access:http://www.sciencedirect.com/science/article/pii/S2090447916300624
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spelling doaj-b4dcb2c6173f47b18505dac66281298d2021-06-02T08:05:13ZengElsevierAin Shams Engineering Journal2090-44792018-12-0194953963Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformationR. Kandasamy0Vibhu Vignesh1Ashwin Kumar2Sulaiman Haji Hasan3Norasikin Mat Isa4Research Centre for Computational Fluid Dynamics, FSTPi, Universiti Tun Hussein Onn Malaysia, Malaysia; Corresponding author. Tel.: +60 7 453 7416; fax: +60 7 453 6051.Faculty of Manufacturing and Mechanical Engineering, Universiti Tun Hussein Onn Malaysia, MalaysiaFaculty of Manufacturing and Mechanical Engineering, Universiti Tun Hussein Onn Malaysia, MalaysiaFaculty of Manufacturing and Mechanical Engineering, Universiti Tun Hussein Onn Malaysia, MalaysiaFaculty of Manufacturing and Mechanical Engineering, Universiti Tun Hussein Onn Malaysia, MalaysiaAn investigation of the boundary layer nanofluids flow over a porous wedge in the presence of uniform transverse magnetic field and thermal radiation energy has been analyzed. Water and seawater based nanofluid containing copper, aluminum oxide and Single Walled Carbon nanotubes (SWCNTs) is taken into consideration. The governing equations in terms of ODEs are solved using fourth–fifth order Runge–Kutta–Fehlberg method with shooting technique. Approximate solution of temperature, velocity, the rate of heat transfer and the shear stress at the wedge are illustrated graphically for several values of the pertinent parameters. Thermal conductivity enhancements of water and seawater in the presence of single-walled carbon nanotubes (SWCNTs) are presented. The thermal boundary layer of SWCNTs–water is compared to SWCNTs–seawater on absorbing the incident thermal energy radiation and transmitting it to the nanofluid by convection. Momentum and thermal boundary layer thickness for SWCNTs–seawater is stronger than SWCNTs–water with increase of the radiation parameter because of low thermal conductivity of seawater. The rate of heat transfer of Cu–seawater is significantly stronger than all the other mixtures in the flow regime because of the combined effects of density of copper and seawater. Keywords: Water and seawater based SWCNTs, Porous wedge sheet, Lie group analysis, Thermal energy radiationhttp://www.sciencedirect.com/science/article/pii/S2090447916300624
collection DOAJ
language English
format Article
sources DOAJ
author R. Kandasamy
Vibhu Vignesh
Ashwin Kumar
Sulaiman Haji Hasan
Norasikin Mat Isa
spellingShingle R. Kandasamy
Vibhu Vignesh
Ashwin Kumar
Sulaiman Haji Hasan
Norasikin Mat Isa
Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
Ain Shams Engineering Journal
author_facet R. Kandasamy
Vibhu Vignesh
Ashwin Kumar
Sulaiman Haji Hasan
Norasikin Mat Isa
author_sort R. Kandasamy
title Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
title_short Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
title_full Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
title_fullStr Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
title_full_unstemmed Thermal radiation energy due to SWCNTs on MHD nanofluid flow in the presence of seawater/water: Lie group transformation
title_sort thermal radiation energy due to swcnts on mhd nanofluid flow in the presence of seawater/water: lie group transformation
publisher Elsevier
series Ain Shams Engineering Journal
issn 2090-4479
publishDate 2018-12-01
description An investigation of the boundary layer nanofluids flow over a porous wedge in the presence of uniform transverse magnetic field and thermal radiation energy has been analyzed. Water and seawater based nanofluid containing copper, aluminum oxide and Single Walled Carbon nanotubes (SWCNTs) is taken into consideration. The governing equations in terms of ODEs are solved using fourth–fifth order Runge–Kutta–Fehlberg method with shooting technique. Approximate solution of temperature, velocity, the rate of heat transfer and the shear stress at the wedge are illustrated graphically for several values of the pertinent parameters. Thermal conductivity enhancements of water and seawater in the presence of single-walled carbon nanotubes (SWCNTs) are presented. The thermal boundary layer of SWCNTs–water is compared to SWCNTs–seawater on absorbing the incident thermal energy radiation and transmitting it to the nanofluid by convection. Momentum and thermal boundary layer thickness for SWCNTs–seawater is stronger than SWCNTs–water with increase of the radiation parameter because of low thermal conductivity of seawater. The rate of heat transfer of Cu–seawater is significantly stronger than all the other mixtures in the flow regime because of the combined effects of density of copper and seawater. Keywords: Water and seawater based SWCNTs, Porous wedge sheet, Lie group analysis, Thermal energy radiation
url http://www.sciencedirect.com/science/article/pii/S2090447916300624
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