The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application

The heat transport mechanism has an engrossing application in effective heat management for the automobile industry and the biomedical industry. The analysis of the MHD graphene−carboxymethyl cellulose (CMC) solution−water nanofluid past a stretchable wall with Joule heating and velocity slip impact...

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Main Authors: I. Rashid, T. Zubair, M. I. Asjad, S. Irshad, S. M. Eldin
Format: Article
Language:English
Published: Frontiers Media S.A. 2023-01-01
Series:Frontiers in Physics
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fphy.2022.1065982/full
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author I. Rashid
T. Zubair
M. I. Asjad
S. Irshad
S. M. Eldin
author_facet I. Rashid
T. Zubair
M. I. Asjad
S. Irshad
S. M. Eldin
author_sort I. Rashid
collection DOAJ
description The heat transport mechanism has an engrossing application in effective heat management for the automobile industry and the biomedical industry. The analysis of the MHD graphene−carboxymethyl cellulose (CMC) solution−water nanofluid past a stretchable wall with Joule heating and velocity slip impact is performed in this regard. A graphene-based nanofluid is considered. The dynamic model is used to simplify the complicated ordinary differential equations into non-dimensional forms, which are then evaluated analytically. Numerical data and graphs are produced to analyze the consequences of a physical entity with the aid of Maple 17. Moreover, the velocity field is decreased, while the magnitude of the magnetic parameter is increased. A decrease in θ(η) is observed as a result of an increase in ϕ. It is noted that a rise in the magnetic parameter causes a fall in the temperature distribution. It is perceived that −f′′(0) is decreased with an augmentation in βs, and an opposite trend is shown for ϕ. The velocity profile is the growing function of Mgn, βs, and Kve, with the reversed mode shown in case of ϕ. The temperature profile is the declining function of Pr, Ecrt, ϕ, and χ, with a contradictory trend observed for Mgn and βs. The flow regime is displayed against the viscoelastic parameter.
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spelling doaj.art-38e630faa92d44afbe71a9269a9123d22023-01-30T09:17:29ZengFrontiers Media S.A.Frontiers in Physics2296-424X2023-01-011010.3389/fphy.2022.10659821065982The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant applicationI. Rashid0T. Zubair1M. I. Asjad2S. Irshad3S. M. Eldin4Department of Engineering and Computer Science, National University of Modern Languages, Islamabad, PakistanSchool of Electrical and Electronic Engineering, The University of Adelaide, Adelaide, NT, AustraliaDepartment of Mathematics, University of Management and Technology Lahore, Rawalpindi, PakistanDepartment of Mathematics, National University of Modern Languages, Rawalpindi, PakistanCenter of Research, Faculty of Engineering, Future University in Egypt, New Cairo, EgyptThe heat transport mechanism has an engrossing application in effective heat management for the automobile industry and the biomedical industry. The analysis of the MHD graphene−carboxymethyl cellulose (CMC) solution−water nanofluid past a stretchable wall with Joule heating and velocity slip impact is performed in this regard. A graphene-based nanofluid is considered. The dynamic model is used to simplify the complicated ordinary differential equations into non-dimensional forms, which are then evaluated analytically. Numerical data and graphs are produced to analyze the consequences of a physical entity with the aid of Maple 17. Moreover, the velocity field is decreased, while the magnitude of the magnetic parameter is increased. A decrease in θ(η) is observed as a result of an increase in ϕ. It is noted that a rise in the magnetic parameter causes a fall in the temperature distribution. It is perceived that −f′′(0) is decreased with an augmentation in βs, and an opposite trend is shown for ϕ. The velocity profile is the growing function of Mgn, βs, and Kve, with the reversed mode shown in case of ϕ. The temperature profile is the declining function of Pr, Ecrt, ϕ, and χ, with a contradictory trend observed for Mgn and βs. The flow regime is displayed against the viscoelastic parameter.https://www.frontiersin.org/articles/10.3389/fphy.2022.1065982/fullgraphene nanoparticlesslip effectthermal radiationsmagnetic fieldclosed-form solution
spellingShingle I. Rashid
T. Zubair
M. I. Asjad
S. Irshad
S. M. Eldin
The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
Frontiers in Physics
graphene nanoparticles
slip effect
thermal radiations
magnetic field
closed-form solution
title The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
title_full The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
title_fullStr The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
title_full_unstemmed The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
title_short The MHD graphene−CMC−water nanofluid past a stretchable wall with Joule heating and velocity slip impact: Coolant application
title_sort mhd graphene cmc water nanofluid past a stretchable wall with joule heating and velocity slip impact coolant application
topic graphene nanoparticles
slip effect
thermal radiations
magnetic field
closed-form solution
url https://www.frontiersin.org/articles/10.3389/fphy.2022.1065982/full
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