Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.

The slip-flow and heat transfer of a non-Newtonian nanofluid in a microtube is theoretically studied. The power-law rheology is adopted to describe the non-Newtonian characteristics of the flow, in which the fluid consistency coefficient and the flow behavior index depend on the nanoparticle volume...

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Main Authors: Jun Niu, Ceji Fu, Wenchang Tan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3352882?pdf=render
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spelling doaj-d42c3267f87b4dc7afc997e4dc1f6d832020-11-25T02:38:51ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0175e3727410.1371/journal.pone.0037274Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.Jun NiuCeji FuWenchang TanThe slip-flow and heat transfer of a non-Newtonian nanofluid in a microtube is theoretically studied. The power-law rheology is adopted to describe the non-Newtonian characteristics of the flow, in which the fluid consistency coefficient and the flow behavior index depend on the nanoparticle volume fraction. The velocity profile, volumetric flow rate and local Nusselt number are calculated for different values of nanoparticle volume fraction and slip length. The results show that the influence of nanoparticle volume fraction on the flow of the nanofluid depends on the pressure gradient, which is quite different from that of the Newtonian nanofluid. Increase of the nanoparticle volume fraction has the effect to impede the flow at a small pressure gradient, but it changes to facilitate the flow when the pressure gradient is large enough. This remarkable phenomenon is observed when the tube radius shrinks to micrometer scale. On the other hand, we find that increase of the slip length always results in larger flow rate of the nanofluid. Furthermore, the heat transfer rate of the nanofluid in the microtube can be enhanced due to the non-Newtonian rheology and slip boundary effects. The thermally fully developed heat transfer rate under constant wall temperature and constant heat flux boundary conditions is also compared.http://europepmc.org/articles/PMC3352882?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Jun Niu
Ceji Fu
Wenchang Tan
spellingShingle Jun Niu
Ceji Fu
Wenchang Tan
Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
PLoS ONE
author_facet Jun Niu
Ceji Fu
Wenchang Tan
author_sort Jun Niu
title Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
title_short Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
title_full Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
title_fullStr Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
title_full_unstemmed Slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
title_sort slip-flow and heat transfer of a non-newtonian nanofluid in a microtube.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description The slip-flow and heat transfer of a non-Newtonian nanofluid in a microtube is theoretically studied. The power-law rheology is adopted to describe the non-Newtonian characteristics of the flow, in which the fluid consistency coefficient and the flow behavior index depend on the nanoparticle volume fraction. The velocity profile, volumetric flow rate and local Nusselt number are calculated for different values of nanoparticle volume fraction and slip length. The results show that the influence of nanoparticle volume fraction on the flow of the nanofluid depends on the pressure gradient, which is quite different from that of the Newtonian nanofluid. Increase of the nanoparticle volume fraction has the effect to impede the flow at a small pressure gradient, but it changes to facilitate the flow when the pressure gradient is large enough. This remarkable phenomenon is observed when the tube radius shrinks to micrometer scale. On the other hand, we find that increase of the slip length always results in larger flow rate of the nanofluid. Furthermore, the heat transfer rate of the nanofluid in the microtube can be enhanced due to the non-Newtonian rheology and slip boundary effects. The thermally fully developed heat transfer rate under constant wall temperature and constant heat flux boundary conditions is also compared.
url http://europepmc.org/articles/PMC3352882?pdf=render
work_keys_str_mv AT junniu slipflowandheattransferofanonnewtoniannanofluidinamicrotube
AT cejifu slipflowandheattransferofanonnewtoniannanofluidinamicrotube
AT wenchangtan slipflowandheattransferofanonnewtoniannanofluidinamicrotube
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