Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.

Analysis has been done to investigate the heat generation/absorption effects in a steady flow of non-Newtonian nanofluid over a surface which is stretching linearly in its own plane. An upper convected Maxwell model (UCM) has been utilized as the non-Newtonian fluid model in view of the fact that it...

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Main Authors: Muhammad Awais, Tasawar Hayat, Sania Irum, Ahmed Alsaedi
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4482663?pdf=render
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spelling doaj-13c54847d85c4510a7d907a6e83b98532020-11-24T21:11:17ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01106e012981410.1371/journal.pone.0129814Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.Muhammad AwaisTasawar HayatSania IrumAhmed AlsaediAnalysis has been done to investigate the heat generation/absorption effects in a steady flow of non-Newtonian nanofluid over a surface which is stretching linearly in its own plane. An upper convected Maxwell model (UCM) has been utilized as the non-Newtonian fluid model in view of the fact that it can predict relaxation time phenomenon which the Newtonian model cannot. Behavior of the relaxations phenomenon has been presented in terms of Deborah number. Transport phenomenon with convective cooling process has been analyzed. Brownian motion "Db" and thermophoresis effects "Dt" occur in the transport equations. The momentum, energy and nanoparticle concentration profiles are examined with respect to the involved rheological parameters namely the Deborah number, source/sink parameter, the Brownian motion parameters, thermophoresis parameter and Biot number. Both numerical and analytic solutions are presented and found in nice agreement. Comparison with the published data is also made to ensure the validity. Stream lines for Maxwell and Newtonian fluid models are presented in the analysis.http://europepmc.org/articles/PMC4482663?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Awais
Tasawar Hayat
Sania Irum
Ahmed Alsaedi
spellingShingle Muhammad Awais
Tasawar Hayat
Sania Irum
Ahmed Alsaedi
Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
PLoS ONE
author_facet Muhammad Awais
Tasawar Hayat
Sania Irum
Ahmed Alsaedi
author_sort Muhammad Awais
title Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
title_short Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
title_full Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
title_fullStr Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
title_full_unstemmed Heat Generation/Absorption Effects in a Boundary Layer Stretched Flow of Maxwell Nanofluid: Analytic and Numeric Solutions.
title_sort heat generation/absorption effects in a boundary layer stretched flow of maxwell nanofluid: analytic and numeric solutions.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Analysis has been done to investigate the heat generation/absorption effects in a steady flow of non-Newtonian nanofluid over a surface which is stretching linearly in its own plane. An upper convected Maxwell model (UCM) has been utilized as the non-Newtonian fluid model in view of the fact that it can predict relaxation time phenomenon which the Newtonian model cannot. Behavior of the relaxations phenomenon has been presented in terms of Deborah number. Transport phenomenon with convective cooling process has been analyzed. Brownian motion "Db" and thermophoresis effects "Dt" occur in the transport equations. The momentum, energy and nanoparticle concentration profiles are examined with respect to the involved rheological parameters namely the Deborah number, source/sink parameter, the Brownian motion parameters, thermophoresis parameter and Biot number. Both numerical and analytic solutions are presented and found in nice agreement. Comparison with the published data is also made to ensure the validity. Stream lines for Maxwell and Newtonian fluid models are presented in the analysis.
url http://europepmc.org/articles/PMC4482663?pdf=render
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AT tasawarhayat heatgenerationabsorptioneffectsinaboundarylayerstretchedflowofmaxwellnanofluidanalyticandnumericsolutions
AT saniairum heatgenerationabsorptioneffectsinaboundarylayerstretchedflowofmaxwellnanofluidanalyticandnumericsolutions
AT ahmedalsaedi heatgenerationabsorptioneffectsinaboundarylayerstretchedflowofmaxwellnanofluidanalyticandnumericsolutions
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