Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk

This paper investigates thermophoretic deposition of micron sized particles on unsteady forced convective heat and mass transfer flow due to a rotating disk. Using similarity transformations the governing nonlinear partial differential equations are transformed into a system of ordinary differential...

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Main Authors: M.S. Alam, S.M. Chapal Hossain, M.M. Rahman
Format: Article
Language:English
Published: Elsevier 2016-03-01
Series:Ain Shams Engineering Journal
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2090447915000593
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spelling doaj-ad2bb6f74c774dd1ad436f27e0c0cf582021-06-02T03:09:02ZengElsevierAin Shams Engineering Journal2090-44792016-03-017144145210.1016/j.asej.2015.04.005Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating diskM.S. Alam0S.M. Chapal Hossain1M.M. Rahman2Department of Mathematics, Jagannath University, Dhaka 1100, BangladeshDepartment of Mathematics, Jagannath University, Dhaka 1100, BangladeshDepartment of Mathematics and Statistics, College of Science, Sultan Qaboos University, P.O. Box 36, P.C. 123 Al-Khod, Muscat, OmanThis paper investigates thermophoretic deposition of micron sized particles on unsteady forced convective heat and mass transfer flow due to a rotating disk. Using similarity transformations the governing nonlinear partial differential equations are transformed into a system of ordinary differential equations that are then solved numerically by applying Nachtsheim–Swigert shooting iteration technique along with sixth-order Runge–Kutta integration scheme. The effects of the pertinent parameters on the radial, tangential and axial velocities, temperature and concentration distributions, and axial thermophoretic velocity together with the local skin-friction coefficient, and local Nusselt number are displayed graphically. The inward axial thermophoretic deposition velocity (local Stanton number) is also tabulated. The obtained results show that axial thermophoretic velocity is increased with the increasing values of the thermophoretic coefficient, thermophoresis parameter, rotational parameter as well as unsteadiness parameter. The results also show that inward axial thermophoretic particle deposition velocity decreases with the increase of the Lewis number.http://www.sciencedirect.com/science/article/pii/S2090447915000593Forced convectionHeat transferMass transferUnsteady flowRotating diskThermophoresis
collection DOAJ
language English
format Article
sources DOAJ
author M.S. Alam
S.M. Chapal Hossain
M.M. Rahman
spellingShingle M.S. Alam
S.M. Chapal Hossain
M.M. Rahman
Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
Ain Shams Engineering Journal
Forced convection
Heat transfer
Mass transfer
Unsteady flow
Rotating disk
Thermophoresis
author_facet M.S. Alam
S.M. Chapal Hossain
M.M. Rahman
author_sort M.S. Alam
title Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
title_short Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
title_full Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
title_fullStr Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
title_full_unstemmed Transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
title_sort transient thermophoretic particle deposition on forced convective heat and mass transfer flow due to a rotating disk
publisher Elsevier
series Ain Shams Engineering Journal
issn 2090-4479
publishDate 2016-03-01
description This paper investigates thermophoretic deposition of micron sized particles on unsteady forced convective heat and mass transfer flow due to a rotating disk. Using similarity transformations the governing nonlinear partial differential equations are transformed into a system of ordinary differential equations that are then solved numerically by applying Nachtsheim–Swigert shooting iteration technique along with sixth-order Runge–Kutta integration scheme. The effects of the pertinent parameters on the radial, tangential and axial velocities, temperature and concentration distributions, and axial thermophoretic velocity together with the local skin-friction coefficient, and local Nusselt number are displayed graphically. The inward axial thermophoretic deposition velocity (local Stanton number) is also tabulated. The obtained results show that axial thermophoretic velocity is increased with the increasing values of the thermophoretic coefficient, thermophoresis parameter, rotational parameter as well as unsteadiness parameter. The results also show that inward axial thermophoretic particle deposition velocity decreases with the increase of the Lewis number.
topic Forced convection
Heat transfer
Mass transfer
Unsteady flow
Rotating disk
Thermophoresis
url http://www.sciencedirect.com/science/article/pii/S2090447915000593
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AT smchapalhossain transientthermophoreticparticledepositiononforcedconvectiveheatandmasstransferflowduetoarotatingdisk
AT mmrahman transientthermophoreticparticledepositiononforcedconvectiveheatandmasstransferflowduetoarotatingdisk
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