Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model

A semi-analytical investigation has been carried out to analyze unsteady MHD second-grade flow under the Dual-Phase-Lag (DPL) heat and mass transfer model in a vertical microchannel filled with porous material. Diffusion thermo (Dufour) effects and homogenous chemical reaction are considered as well...

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Main Authors: Subharthi Sarkar, Mehari Fentahun Endalew, Oluwole Daniel Makinde
Format: Article
Language:English
Published: Shahid Chamran University of Ahvaz 2019-06-01
Series:Journal of Applied and Computational Mechanics
Subjects:
Online Access:http://jacm.scu.ac.ir/article_14115_d87196fc822e9a2f4534466622c69fb0.pdf
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spelling doaj-250544b90ccc4382b2740d31da073e5b2020-11-25T01:00:17ZengShahid Chamran University of AhvazJournal of Applied and Computational Mechanics2383-45362383-45362019-06-015476377810.22055/jacm.2019.27500.140914115Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer ModelSubharthi Sarkar0Mehari Fentahun Endalew1Oluwole Daniel Makinde2Department of Mathematics, Kalinga Institute of Industrial Technology deemed to be University (KIIT), Bhubaneswar-751024, Odisha, IndiaDepartment of Mathematics, Kalinga Institute of Industrial Technology deemed to be University (KIIT), Bhubaneswar-751024, Odisha, IndiaFaculty of Military Science, Stellenbosch University, Private Bag X2, Saldanha 7395,South AfricaA semi-analytical investigation has been carried out to analyze unsteady MHD second-grade flow under the Dual-Phase-Lag (DPL) heat and mass transfer model in a vertical microchannel filled with porous material. Diffusion thermo (Dufour) effects and homogenous chemical reaction are considered as well. The governing partial differential equations are solved by using the Laplace transform method while its inversion is done numerically using INVLAP subroutine of MATLAB. The numerical values of fluid velocity, fluid temperature and species concentration are demonstrated through graphs while the numerical values of skin friction, heat transfer rate and mass transfer rate presented in tabular form for different values of parameters that govern the flow. For the first time, a comparison of heat transfer utilizing the classical Fourier’s heat conduction model, hyperbolic heat conduction Cattaneo-Vernotte (CV) model, and the DPL model is carried out for the flow of a second grade fluid. It is found that the differences between them vanish at dimensionless time t=0.4 (for temperature) and at t=0.5 (for velocity), i.e. at a time where the system reaches steady state. The influence of phase lag parameters in both thermal and solutal transport on the fluid flow characteristics have been deciphered and analyzed. The results conveyed through this article would help researchers to understand non-Fourier heat and mass transfer in the flow of second-grade fluids which may play a vital role in the design of systems in polymer industries.http://jacm.scu.ac.ir/article_14115_d87196fc822e9a2f4534466622c69fb0.pdfDual-phase-lagDouble diffusionPorous MicrochannelMHD second grade flowChemical Reaction
collection DOAJ
language English
format Article
sources DOAJ
author Subharthi Sarkar
Mehari Fentahun Endalew
Oluwole Daniel Makinde
spellingShingle Subharthi Sarkar
Mehari Fentahun Endalew
Oluwole Daniel Makinde
Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
Journal of Applied and Computational Mechanics
Dual-phase-lag
Double diffusion
Porous Microchannel
MHD second grade flow
Chemical Reaction
author_facet Subharthi Sarkar
Mehari Fentahun Endalew
Oluwole Daniel Makinde
author_sort Subharthi Sarkar
title Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
title_short Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
title_full Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
title_fullStr Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
title_full_unstemmed Study of MHD Second Grade Flow through a Porous Microchannel under the Dual-Phase-Lag Heat and Mass Transfer Model
title_sort study of mhd second grade flow through a porous microchannel under the dual-phase-lag heat and mass transfer model
publisher Shahid Chamran University of Ahvaz
series Journal of Applied and Computational Mechanics
issn 2383-4536
2383-4536
publishDate 2019-06-01
description A semi-analytical investigation has been carried out to analyze unsteady MHD second-grade flow under the Dual-Phase-Lag (DPL) heat and mass transfer model in a vertical microchannel filled with porous material. Diffusion thermo (Dufour) effects and homogenous chemical reaction are considered as well. The governing partial differential equations are solved by using the Laplace transform method while its inversion is done numerically using INVLAP subroutine of MATLAB. The numerical values of fluid velocity, fluid temperature and species concentration are demonstrated through graphs while the numerical values of skin friction, heat transfer rate and mass transfer rate presented in tabular form for different values of parameters that govern the flow. For the first time, a comparison of heat transfer utilizing the classical Fourier’s heat conduction model, hyperbolic heat conduction Cattaneo-Vernotte (CV) model, and the DPL model is carried out for the flow of a second grade fluid. It is found that the differences between them vanish at dimensionless time t=0.4 (for temperature) and at t=0.5 (for velocity), i.e. at a time where the system reaches steady state. The influence of phase lag parameters in both thermal and solutal transport on the fluid flow characteristics have been deciphered and analyzed. The results conveyed through this article would help researchers to understand non-Fourier heat and mass transfer in the flow of second-grade fluids which may play a vital role in the design of systems in polymer industries.
topic Dual-phase-lag
Double diffusion
Porous Microchannel
MHD second grade flow
Chemical Reaction
url http://jacm.scu.ac.ir/article_14115_d87196fc822e9a2f4534466622c69fb0.pdf
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