Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip

Abstract Hybrid nanofluids are extremely important in field of engineering and technology due to their higher heat transportation performance resulting in increased heat transfer rates. In the presence of thermal heat flux, the effect of a slanted MHD with velocity slip condition on a CNTs hybrid na...

Full description

Bibliographic Details
Main Authors: Saleem Nasir, Abdallah S. Berrouk, Asim Aamir, Zahir Shah
Format: Article
Language:English
Published: Nature Portfolio 2023-02-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-023-29137-3
_version_ 1811171790796357632
author Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Zahir Shah
author_facet Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Zahir Shah
author_sort Saleem Nasir
collection DOAJ
description Abstract Hybrid nanofluids are extremely important in field of engineering and technology due to their higher heat transportation performance resulting in increased heat transfer rates. In the presence of thermal heat flux, the effect of a slanted MHD with velocity slip condition on a CNTs hybrid nanocomposite across a gradually extending surface is investigated. In present analysis, Maxwell nanofluid is embedded with SWCNT and MWCNT (single and multiple wall carbon nanotubes) nanoparticles. The nanomaterials transformation framework is obtained by employing Xue modified theoretical model. Various factors like dissipation, thermal radiations and Ohmic heat influences are adequately implemented in heat formulation. The physical features of thermodynamical mechanism of irreversibility are explored. The thermodynamics second law is used to produce the entropy optimization formulation. In addition, entropy is utilized to assess the energy aspects of a heat exchanger. Utilizing appropriate parameters, the model nonlinear PDEs are transformed to ODEs. The HAM technique is used to compute the solution of nonlinear ODEs. For both types of CNTs, the variations of entropy rate, Bejan number, velocity and temperature field versus key technical parameters is analyzed. The Nu and C f computational result for both CNTs are examined in tabulated and chart form. Velocity is inversely proportional to magnetic and solid volume nanoparticle parameters. The Br and Rd accelerates NG and Be for both nanocomposites. Additionally, a comparison of the HAM result and the numerical result is validated.
first_indexed 2024-04-10T17:19:59Z
format Article
id doaj.art-ebdb7efde9eb45eabefcf60e22aa6721
institution Directory Open Access Journal
issn 2045-2322
language English
last_indexed 2024-04-10T17:19:59Z
publishDate 2023-02-01
publisher Nature Portfolio
record_format Article
series Scientific Reports
spelling doaj.art-ebdb7efde9eb45eabefcf60e22aa67212023-02-05T12:10:16ZengNature PortfolioScientific Reports2045-23222023-02-0113111710.1038/s41598-023-29137-3Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slipSaleem Nasir0Abdallah S. Berrouk1Asim Aamir2Zahir Shah3Mechanical Engineering Department, Khalifa University of Science and TechnologyMechanical Engineering Department, Khalifa University of Science and TechnologyDepartment of Mechanical Engineering, Diponegoro UniversityDepartment of Mathematics, University of Lakki MarwatAbstract Hybrid nanofluids are extremely important in field of engineering and technology due to their higher heat transportation performance resulting in increased heat transfer rates. In the presence of thermal heat flux, the effect of a slanted MHD with velocity slip condition on a CNTs hybrid nanocomposite across a gradually extending surface is investigated. In present analysis, Maxwell nanofluid is embedded with SWCNT and MWCNT (single and multiple wall carbon nanotubes) nanoparticles. The nanomaterials transformation framework is obtained by employing Xue modified theoretical model. Various factors like dissipation, thermal radiations and Ohmic heat influences are adequately implemented in heat formulation. The physical features of thermodynamical mechanism of irreversibility are explored. The thermodynamics second law is used to produce the entropy optimization formulation. In addition, entropy is utilized to assess the energy aspects of a heat exchanger. Utilizing appropriate parameters, the model nonlinear PDEs are transformed to ODEs. The HAM technique is used to compute the solution of nonlinear ODEs. For both types of CNTs, the variations of entropy rate, Bejan number, velocity and temperature field versus key technical parameters is analyzed. The Nu and C f computational result for both CNTs are examined in tabulated and chart form. Velocity is inversely proportional to magnetic and solid volume nanoparticle parameters. The Br and Rd accelerates NG and Be for both nanocomposites. Additionally, a comparison of the HAM result and the numerical result is validated.https://doi.org/10.1038/s41598-023-29137-3
spellingShingle Saleem Nasir
Abdallah S. Berrouk
Asim Aamir
Zahir Shah
Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
Scientific Reports
title Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
title_full Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
title_fullStr Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
title_full_unstemmed Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
title_short Entropy optimization and heat flux analysis of Maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
title_sort entropy optimization and heat flux analysis of maxwell nanofluid configurated by an exponentially stretching surface with velocity slip
url https://doi.org/10.1038/s41598-023-29137-3
work_keys_str_mv AT saleemnasir entropyoptimizationandheatfluxanalysisofmaxwellnanofluidconfiguratedbyanexponentiallystretchingsurfacewithvelocityslip
AT abdallahsberrouk entropyoptimizationandheatfluxanalysisofmaxwellnanofluidconfiguratedbyanexponentiallystretchingsurfacewithvelocityslip
AT asimaamir entropyoptimizationandheatfluxanalysisofmaxwellnanofluidconfiguratedbyanexponentiallystretchingsurfacewithvelocityslip
AT zahirshah entropyoptimizationandheatfluxanalysisofmaxwellnanofluidconfiguratedbyanexponentiallystretchingsurfacewithvelocityslip