Internal energy change and activation energy effects on Casson fluid

This paper examines the steady-state momentum heat and mass transfer flow of a Casson fluid flow in the existence of a pre-exponential factor. The velocity of the fluid over a vertical stretched pin changes linearly with the axial distance when a Casson model is supposed for the viscosity. A similar...

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Main Authors: T. Salahuddin, Nazim Siddique, Maryam Arshad, I. Tlili
Format: Article
Language:English
Published: AIP Publishing LLC 2020-02-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.5140349
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spelling doaj-8a4010ee1e734c72ba2a1f36b8b7e8362020-11-25T02:03:35ZengAIP Publishing LLCAIP Advances2158-32262020-02-01102025009025009-1110.1063/1.5140349Internal energy change and activation energy effects on Casson fluidT. Salahuddin0Nazim Siddique1Maryam Arshad2I. Tlili3Department of Mathematics, Mirpur University of Science and Technology (MUST), Mirpur 10250, AJK, PakistanDepartment of Mathematics, Mirpur University of Science and Technology (MUST), Mirpur 10250, AJK, PakistanDepartment of Mathematics, Mirpur University of Science and Technology (MUST), Mirpur 10250, AJK, PakistanDepartment of Management of Science and Technology Development, Ton Duc Thang University, 758307 Ho Chi Minh City, VietnamThis paper examines the steady-state momentum heat and mass transfer flow of a Casson fluid flow in the existence of a pre-exponential factor. The velocity of the fluid over a vertical stretched pin changes linearly with the axial distance when a Casson model is supposed for the viscosity. A similarity transformation eases the Navier–Stokes partial differential equations that are converted into ordinary differential equations and solved numerically for concentration, velocity, and temperature fields. Moreover, viscosity and conductivity are assumed to be dependent on the temperature profile. Results are discussed for two boundary conditions of the pin, while diffusivity is dependent on concentration. A reaction in the form of a pre-exponential factor is taken on the surface of the pin. Parameters such as the mixed convection parameter, viscosity parameter, and viscoelastic parameter are considered for the control of the flow field. In addition, the internal energy change and the Prandtl number are found to examine the temperature field inside the stretched pin, while the Schmidt number, temperature relative parameter, concentration buoyancy parameter, activation energy parameter, and chemical reaction parameter control the concentration field.http://dx.doi.org/10.1063/1.5140349
collection DOAJ
language English
format Article
sources DOAJ
author T. Salahuddin
Nazim Siddique
Maryam Arshad
I. Tlili
spellingShingle T. Salahuddin
Nazim Siddique
Maryam Arshad
I. Tlili
Internal energy change and activation energy effects on Casson fluid
AIP Advances
author_facet T. Salahuddin
Nazim Siddique
Maryam Arshad
I. Tlili
author_sort T. Salahuddin
title Internal energy change and activation energy effects on Casson fluid
title_short Internal energy change and activation energy effects on Casson fluid
title_full Internal energy change and activation energy effects on Casson fluid
title_fullStr Internal energy change and activation energy effects on Casson fluid
title_full_unstemmed Internal energy change and activation energy effects on Casson fluid
title_sort internal energy change and activation energy effects on casson fluid
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-02-01
description This paper examines the steady-state momentum heat and mass transfer flow of a Casson fluid flow in the existence of a pre-exponential factor. The velocity of the fluid over a vertical stretched pin changes linearly with the axial distance when a Casson model is supposed for the viscosity. A similarity transformation eases the Navier–Stokes partial differential equations that are converted into ordinary differential equations and solved numerically for concentration, velocity, and temperature fields. Moreover, viscosity and conductivity are assumed to be dependent on the temperature profile. Results are discussed for two boundary conditions of the pin, while diffusivity is dependent on concentration. A reaction in the form of a pre-exponential factor is taken on the surface of the pin. Parameters such as the mixed convection parameter, viscosity parameter, and viscoelastic parameter are considered for the control of the flow field. In addition, the internal energy change and the Prandtl number are found to examine the temperature field inside the stretched pin, while the Schmidt number, temperature relative parameter, concentration buoyancy parameter, activation energy parameter, and chemical reaction parameter control the concentration field.
url http://dx.doi.org/10.1063/1.5140349
work_keys_str_mv AT tsalahuddin internalenergychangeandactivationenergyeffectsoncassonfluid
AT nazimsiddique internalenergychangeandactivationenergyeffectsoncassonfluid
AT maryamarshad internalenergychangeandactivationenergyeffectsoncassonfluid
AT itlili internalenergychangeandactivationenergyeffectsoncassonfluid
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