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Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect

The main purpose of the current article is to scrutinize the flow of hybrid nanoliquid (ferrous oxide water and carbon nanotubes) (CNTs + Fe [Formula: see text] O [Formula: see text] /H [Formula: see text] O) in two parallel plates under variable magnetic fields with wall suction/injection. The flow...

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Detalles Bibliográficos
Autores principales: Khan, Muhammad Sohail, Mei, Sun, Shabnam, Ali Shah, Nehad, Chung, Jae Dong, Khan, Aamir, Shah, Said Anwar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8878275/
https://www.ncbi.nlm.nih.gov/pubmed/35214989
http://dx.doi.org/10.3390/nano12040660
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author Khan, Muhammad Sohail
Mei, Sun
Shabnam,
Ali Shah, Nehad
Chung, Jae Dong
Khan, Aamir
Shah, Said Anwar
author_facet Khan, Muhammad Sohail
Mei, Sun
Shabnam,
Ali Shah, Nehad
Chung, Jae Dong
Khan, Aamir
Shah, Said Anwar
author_sort Khan, Muhammad Sohail
collection PubMed
description The main purpose of the current article is to scrutinize the flow of hybrid nanoliquid (ferrous oxide water and carbon nanotubes) (CNTs + Fe [Formula: see text] O [Formula: see text] /H [Formula: see text] O) in two parallel plates under variable magnetic fields with wall suction/injection. The flow is assumed to be laminar and steady. Under a changeable magnetic field, the flow of a hybrid nanofluid containing nanoparticles Fe [Formula: see text] O [Formula: see text] and carbon nanotubes are investigated for mass and heat transmission enhancements. The governing equations of the proposed hybrid nanoliquid model are formulated through highly nonlinear partial differential equations (PDEs) including momentum equation, energy equation, and the magnetic field equation. The proposed model was further reduced to nonlinear ordinary differential equations (ODEs) through similarity transformation. A rigorous numerical scheme in MATLAB known as the parametric continuation method (PCM) has been used for the solution of the reduced form of the proposed method. The numerical outcomes obtained from the solution of the model such as velocity profile, temperature profile, and variable magnetic field are displayed quantitatively by various graphs and tables. In addition, the impact of various emerging parameters of the hybrid nanofluid flow is analyzed regarding flow properties such as variable magnetic field, velocity profile, temperature profile, and nanomaterials volume fraction. The influence of skin friction and Nusselt number are also observed for the flow properties. These types of hybrid nanofluids (CNTs + Fe [Formula: see text] O [Formula: see text] /H [Formula: see text] O) are frequently used in various medical applications. For the validity of the numerical scheme, the proposed model has been solved by another numerical scheme (BVP4C) in MATLAB.
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spelling pubmed-88782752022-02-26 Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect Khan, Muhammad Sohail Mei, Sun Shabnam, Ali Shah, Nehad Chung, Jae Dong Khan, Aamir Shah, Said Anwar Nanomaterials (Basel) Article The main purpose of the current article is to scrutinize the flow of hybrid nanoliquid (ferrous oxide water and carbon nanotubes) (CNTs + Fe [Formula: see text] O [Formula: see text] /H [Formula: see text] O) in two parallel plates under variable magnetic fields with wall suction/injection. The flow is assumed to be laminar and steady. Under a changeable magnetic field, the flow of a hybrid nanofluid containing nanoparticles Fe [Formula: see text] O [Formula: see text] and carbon nanotubes are investigated for mass and heat transmission enhancements. The governing equations of the proposed hybrid nanoliquid model are formulated through highly nonlinear partial differential equations (PDEs) including momentum equation, energy equation, and the magnetic field equation. The proposed model was further reduced to nonlinear ordinary differential equations (ODEs) through similarity transformation. A rigorous numerical scheme in MATLAB known as the parametric continuation method (PCM) has been used for the solution of the reduced form of the proposed method. The numerical outcomes obtained from the solution of the model such as velocity profile, temperature profile, and variable magnetic field are displayed quantitatively by various graphs and tables. In addition, the impact of various emerging parameters of the hybrid nanofluid flow is analyzed regarding flow properties such as variable magnetic field, velocity profile, temperature profile, and nanomaterials volume fraction. The influence of skin friction and Nusselt number are also observed for the flow properties. These types of hybrid nanofluids (CNTs + Fe [Formula: see text] O [Formula: see text] /H [Formula: see text] O) are frequently used in various medical applications. For the validity of the numerical scheme, the proposed model has been solved by another numerical scheme (BVP4C) in MATLAB. MDPI 2022-02-16 /pmc/articles/PMC8878275/ /pubmed/35214989 http://dx.doi.org/10.3390/nano12040660 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Khan, Muhammad Sohail
Mei, Sun
Shabnam,
Ali Shah, Nehad
Chung, Jae Dong
Khan, Aamir
Shah, Said Anwar
Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title_full Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title_fullStr Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title_full_unstemmed Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title_short Steady Squeezing Flow of Magnetohydrodynamics Hybrid Nanofluid Flow Comprising Carbon Nanotube-Ferrous Oxide/Water with Suction/Injection Effect
title_sort steady squeezing flow of magnetohydrodynamics hybrid nanofluid flow comprising carbon nanotube-ferrous oxide/water with suction/injection effect
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8878275/
https://www.ncbi.nlm.nih.gov/pubmed/35214989
http://dx.doi.org/10.3390/nano12040660
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