Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects

The present work investigates the impacts of the Lorentz forces, porosity factor, viscous dissipation and radiation in thermo-Marangoni convective flow of a nanofluids (comprising two distinct kinds of carbon nanotubes (CNTs)), in water (H2O). Heat transportation developed by Marangoni forces happen...

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Main Authors: Islam ZARİ, Taza GUL, Karlygash DOSMAGULOVA, Tahir Saeed KHAN, Safia HAQ
Format: Article
Language:English
Published: ATNAA 2024-01-01
Series:Advances in the Theory of Nonlinear Analysis and its Applications
Subjects:
Online Access:https://atnaea.org/index.php/journal/article/view/16/16
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author Islam ZARİ
Taza GUL
Karlygash DOSMAGULOVA
Tahir Saeed KHAN
Safia HAQ
author_facet Islam ZARİ
Taza GUL
Karlygash DOSMAGULOVA
Tahir Saeed KHAN
Safia HAQ
author_sort Islam ZARİ
collection DOAJ
description The present work investigates the impacts of the Lorentz forces, porosity factor, viscous dissipation and radiation in thermo-Marangoni convective flow of a nanofluids (comprising two distinct kinds of carbon nanotubes (CNTs)), in water (H2O). Heat transportation developed by Marangoni forces happens regularly in microgravity situations, heat pipes, and in crystal growth. Therefore, Marangoni convection is considered in the flow model. A nonlinear system is constructed utilizing these assumptions which further converted to ordinary differential equations (ODEs) by accurate similarity transformations. The homotopic scheme is utilized to compute the exact solution for the proposed system. The study reveals that higher estimations of Hartmann number and Marangoni parameter speed up the fluid velocity while the opposite behavior is noted for porosity factor. Further, the rate of heat transfer shows upward trend for the Hartmann number, Marangoni parameter, nanoparticle solid volume fraction, radiation parameter whereas a downward trend is followed by the Brinkman number and porosity factor. It is fascinating to take observe that contemporary analytical outcomes validate the superb convergence with previous investigation.
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spelling doaj.art-46750a103e2b4667852a4ee5c1d785022024-03-22T15:40:47ZengATNAAAdvances in the Theory of Nonlinear Analysis and its Applications2587-26482024-01-0171618110.31197/atnaa.1187342Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effectsIslam ZARİ0Taza GUL1Karlygash DOSMAGULOVA2Tahir Saeed KHAN3Safia HAQ4University of Peshawar, PakistanUniversity of Peshawar, Pakistan and University of Cambridge, UK.Ghent University, BelgiumUniversity of Peshawar, PakistanUniversity of Peshawar, PakistanThe present work investigates the impacts of the Lorentz forces, porosity factor, viscous dissipation and radiation in thermo-Marangoni convective flow of a nanofluids (comprising two distinct kinds of carbon nanotubes (CNTs)), in water (H2O). Heat transportation developed by Marangoni forces happens regularly in microgravity situations, heat pipes, and in crystal growth. Therefore, Marangoni convection is considered in the flow model. A nonlinear system is constructed utilizing these assumptions which further converted to ordinary differential equations (ODEs) by accurate similarity transformations. The homotopic scheme is utilized to compute the exact solution for the proposed system. The study reveals that higher estimations of Hartmann number and Marangoni parameter speed up the fluid velocity while the opposite behavior is noted for porosity factor. Further, the rate of heat transfer shows upward trend for the Hartmann number, Marangoni parameter, nanoparticle solid volume fraction, radiation parameter whereas a downward trend is followed by the Brinkman number and porosity factor. It is fascinating to take observe that contemporary analytical outcomes validate the superb convergence with previous investigation. https://atnaea.org/index.php/journal/article/view/16/16marangoni boundary layer flowswcnts/mwcntslorentz forcesviscous dissipationporosity effect
spellingShingle Islam ZARİ
Taza GUL
Karlygash DOSMAGULOVA
Tahir Saeed KHAN
Safia HAQ
Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
Advances in the Theory of Nonlinear Analysis and its Applications
marangoni boundary layer flow
swcnts/mwcnts
lorentz forces
viscous dissipation
porosity effect
title Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
title_full Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
title_fullStr Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
title_full_unstemmed Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
title_short Heat transfer analysis of Radiative-Marangoni Convective flow in nanofluid comprising Lorentz forces and porosity effects
title_sort heat transfer analysis of radiative marangoni convective flow in nanofluid comprising lorentz forces and porosity effects
topic marangoni boundary layer flow
swcnts/mwcnts
lorentz forces
viscous dissipation
porosity effect
url https://atnaea.org/index.php/journal/article/view/16/16
work_keys_str_mv AT islamzari heattransferanalysisofradiativemarangoniconvectiveflowinnanofluidcomprisinglorentzforcesandporosityeffects
AT tazagul heattransferanalysisofradiativemarangoniconvectiveflowinnanofluidcomprisinglorentzforcesandporosityeffects
AT karlygashdosmagulova heattransferanalysisofradiativemarangoniconvectiveflowinnanofluidcomprisinglorentzforcesandporosityeffects
AT tahirsaeedkhan heattransferanalysisofradiativemarangoniconvectiveflowinnanofluidcomprisinglorentzforcesandporosityeffects
AT safiahaq heattransferanalysisofradiativemarangoniconvectiveflowinnanofluidcomprisinglorentzforcesandporosityeffects