Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions

Abstract This investigation describes the hydromagnetic flow of gravity-driven couple stress hybrid nanofluid past a heated plate. The carbon nanotubes (CNTs) are used to characterize the hybrid nanofluid. The heated plate is placed vertically with an application of homogenous-heterogeneous reaction...

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Main Authors: Muhammad Waseem, Taza Gul, Imran Khan, Arshad Khan, Anwar Saeed, Ishtiaq Ali, Poom Kumam
Format: Article
Language:English
Published: Nature Publishing Group 2021-09-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-97045-5
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spelling doaj-ac69b0b9d7224f969fe190fbae080eee2021-09-05T11:31:08ZengNature Publishing GroupScientific Reports2045-23222021-09-0111111210.1038/s41598-021-97045-5Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactionsMuhammad Waseem0Taza Gul1Imran Khan2Arshad Khan3Anwar Saeed4Ishtiaq Ali5Poom Kumam6Department of Mathematics, City University of Science and Information TechnologyDepartment of Mathematics, City University of Science and Information TechnologyDepartment of Mathematics and Statistics, Bacha Khan UniversityCollege of Aeronautical Engineering, National University of Sciences and Technology (NUST)Center of Excellence in Theoretical and Computational Science (TaCS-CoE), Faculty of Science, King Mongkut’s University of Technology Thonburi (KMUTT)Department of Mathematics and Statistics, College of Science, King Faisal UniversityCenter of Excellence in Theoretical and Computational Science (TaCS-CoE), Faculty of Science, King Mongkut’s University of Technology Thonburi (KMUTT)Abstract This investigation describes the hydromagnetic flow of gravity-driven couple stress hybrid nanofluid past a heated plate. The carbon nanotubes (CNTs) are used to characterize the hybrid nanofluid. The heated plate is placed vertically with an application of homogenous-heterogeneous reactions to the assumed flow system. The homogeneous reaction governs by isothermal cubic autocatalytic kinetics while the heterogeneous reaction governs by the first order kinetics. For current study the couple stress hybrid nanofluid is presumed to be conducted electrically with impact of non-uniform magnetic effects. An appropriate set of dimensionless quantities has employed to governing equations and then has solved by homotopy analysis method. The influence of emerging parameters encountered in this work has discussed in detail with the help of graphs. In this study it has examined that, flow of fluid reduces with upsurge in magnetic parameter and volumetric concentrations, whereas thermal and concentration characteristics augment with increase in volumetric concentrations. Moreover, growth in Prandtl number leads to a reduction in thermal characteristics and growth in Schmidt number result a reduction in concentration profile. The impact of various emerging parameters has also studied numerically upon physical quantities. It has established that, with augmentation in values of buoyancy parameter there is a growth in the values of skin friction. A comparison has also carried out between current and established results with a fine agreement in both results.https://doi.org/10.1038/s41598-021-97045-5
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Waseem
Taza Gul
Imran Khan
Arshad Khan
Anwar Saeed
Ishtiaq Ali
Poom Kumam
spellingShingle Muhammad Waseem
Taza Gul
Imran Khan
Arshad Khan
Anwar Saeed
Ishtiaq Ali
Poom Kumam
Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
Scientific Reports
author_facet Muhammad Waseem
Taza Gul
Imran Khan
Arshad Khan
Anwar Saeed
Ishtiaq Ali
Poom Kumam
author_sort Muhammad Waseem
title Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
title_short Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
title_full Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
title_fullStr Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
title_full_unstemmed Gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
title_sort gravity-driven hydromagnetic flow of couple stress hybrid nanofluid with homogenous-heterogeneous reactions
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-09-01
description Abstract This investigation describes the hydromagnetic flow of gravity-driven couple stress hybrid nanofluid past a heated plate. The carbon nanotubes (CNTs) are used to characterize the hybrid nanofluid. The heated plate is placed vertically with an application of homogenous-heterogeneous reactions to the assumed flow system. The homogeneous reaction governs by isothermal cubic autocatalytic kinetics while the heterogeneous reaction governs by the first order kinetics. For current study the couple stress hybrid nanofluid is presumed to be conducted electrically with impact of non-uniform magnetic effects. An appropriate set of dimensionless quantities has employed to governing equations and then has solved by homotopy analysis method. The influence of emerging parameters encountered in this work has discussed in detail with the help of graphs. In this study it has examined that, flow of fluid reduces with upsurge in magnetic parameter and volumetric concentrations, whereas thermal and concentration characteristics augment with increase in volumetric concentrations. Moreover, growth in Prandtl number leads to a reduction in thermal characteristics and growth in Schmidt number result a reduction in concentration profile. The impact of various emerging parameters has also studied numerically upon physical quantities. It has established that, with augmentation in values of buoyancy parameter there is a growth in the values of skin friction. A comparison has also carried out between current and established results with a fine agreement in both results.
url https://doi.org/10.1038/s41598-021-97045-5
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