Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach
This article investigates the heat and mass transfer in flow of bi-viscosity fluid through a porous saturated curved channel with sinusoidally deformed walls. The magnetic field and Joule heating effects are also taken into account. The equations describing the flow and heat/mass transfer are develo...
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2020-10-01
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Series: | Advances in Mechanical Engineering |
Online Access: | https://doi.org/10.1177/1687814020967185 |
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doaj-d9e8a9fa1131476a94c500951fe937c82020-11-25T03:35:21ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402020-10-011210.1177/1687814020967185Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approachRaheel Ahmed0Nasir Ali1Sami Ullah Khan2Ali Chamkha3Iskander Tlili4Department of Mathematics and Statistics, International Islamic University Islamabad, PakistanDepartment of Mathematics and Statistics, International Islamic University Islamabad, PakistanDepartment of Mathematics, COMSATS University Islamabad, Sahiwal, PakistanMechanical Engineering Department, Prince Mohammad Endowment for Nanoscience and Technology, Prince Mohammad Bin Fahd University, Al-Khobar, Saudi ArabiaFaculty of Civil Engineering, Duy Tan University, Da Nang, VietnamThis article investigates the heat and mass transfer in flow of bi-viscosity fluid through a porous saturated curved channel with sinusoidally deformed walls. The magnetic field and Joule heating effects are also taken into account. The equations describing the flow and heat/mass transfer are developed using curvilinear coordinates. A reduction of these equations is made based on lubrication approximation. The reduced linear ordinary differential equations are integrated numerically using an implicit finite difference scheme. It is observed that, the bi-viscosity fluid parameter, permeability parameter, and Hartmann number have analogous effects on the longitudinal velocity. Moreover, temperature of the fluid, heat coefficient, and mass concentration increase by increasing bi-viscosity fluid parameter, Brinkmann number, and Hartmann number. Further, mass concentration increases by increasing the rate of chemical reaction and bi-viscosity parameter. The size of circulating roll in lower half of the channel boosts up with larger variation of bi-viscosity parameter and permeability parameter. The flow patterns in the channel illustrating the effects of bi-viscosity parameter, permeability parameter, and Hartmann number are also displayed.https://doi.org/10.1177/1687814020967185 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Raheel Ahmed Nasir Ali Sami Ullah Khan Ali Chamkha Iskander Tlili |
spellingShingle |
Raheel Ahmed Nasir Ali Sami Ullah Khan Ali Chamkha Iskander Tlili Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach Advances in Mechanical Engineering |
author_facet |
Raheel Ahmed Nasir Ali Sami Ullah Khan Ali Chamkha Iskander Tlili |
author_sort |
Raheel Ahmed |
title |
Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach |
title_short |
Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach |
title_full |
Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach |
title_fullStr |
Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach |
title_full_unstemmed |
Heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: A finite difference approach |
title_sort |
heat and mass transfer characteristics in flow of bi-viscosity fluid through a curved channel with contracting and expanding walls: a finite difference approach |
publisher |
SAGE Publishing |
series |
Advances in Mechanical Engineering |
issn |
1687-8140 |
publishDate |
2020-10-01 |
description |
This article investigates the heat and mass transfer in flow of bi-viscosity fluid through a porous saturated curved channel with sinusoidally deformed walls. The magnetic field and Joule heating effects are also taken into account. The equations describing the flow and heat/mass transfer are developed using curvilinear coordinates. A reduction of these equations is made based on lubrication approximation. The reduced linear ordinary differential equations are integrated numerically using an implicit finite difference scheme. It is observed that, the bi-viscosity fluid parameter, permeability parameter, and Hartmann number have analogous effects on the longitudinal velocity. Moreover, temperature of the fluid, heat coefficient, and mass concentration increase by increasing bi-viscosity fluid parameter, Brinkmann number, and Hartmann number. Further, mass concentration increases by increasing the rate of chemical reaction and bi-viscosity parameter. The size of circulating roll in lower half of the channel boosts up with larger variation of bi-viscosity parameter and permeability parameter. The flow patterns in the channel illustrating the effects of bi-viscosity parameter, permeability parameter, and Hartmann number are also displayed. |
url |
https://doi.org/10.1177/1687814020967185 |
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