Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel

The main objective of current study is investigation on thermo-hydraulic behavior of nanofluids in a sinusoidal wavy channel as a novel geometry under influences of thermophoresis and Brownian motion. Differential quadrature method and optimal homotopy asymptotic scheme have been employed to solve t...

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Autores principales: S.E. Ghasemi, Sina Gouran, Ali Zolfagharian
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Lenguaje:EN
Publicado: Elsevier 2021
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Acceso en línea:https://doaj.org/article/f644ac8d04d34984af736a8b3ce77d15
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spelling oai:doaj.org-article:f644ac8d04d34984af736a8b3ce77d152021-11-26T04:29:19ZThermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel2214-157X10.1016/j.csite.2021.101642https://doaj.org/article/f644ac8d04d34984af736a8b3ce77d152021-12-01T00:00:00Zhttp://www.sciencedirect.com/science/article/pii/S2214157X21008054https://doaj.org/toc/2214-157XThe main objective of current study is investigation on thermo-hydraulic behavior of nanofluids in a sinusoidal wavy channel as a novel geometry under influences of thermophoresis and Brownian motion. Differential quadrature method and optimal homotopy asymptotic scheme have been employed to solve the momentum, continuity, energy and nanoparticle fraction equations. The validity of the proposed approaches is evaluated by comparing with previously published results. The impacts of some other physical parameters on temperature, nanoparticle concentration and velocity profiles will be analyzed in details. For instance, the results indicate that increment of the thermophoresis leads to enhance in values of temperature distribution. Also, the volume fraction of nanoparticle enhances by decreasing the parameter of thermophoresis.S.E. GhasemiSina GouranAli ZolfagharianElsevierarticleThermophoresisWavy channelOptimal homotopy asymptotic method (OHAM)Differential quadrature method (DQM)NanoparticleEngineering (General). Civil engineering (General)TA1-2040ENCase Studies in Thermal Engineering, Vol 28, Iss , Pp 101642- (2021)
institution DOAJ
collection DOAJ
language EN
topic Thermophoresis
Wavy channel
Optimal homotopy asymptotic method (OHAM)
Differential quadrature method (DQM)
Nanoparticle
Engineering (General). Civil engineering (General)
TA1-2040
spellingShingle Thermophoresis
Wavy channel
Optimal homotopy asymptotic method (OHAM)
Differential quadrature method (DQM)
Nanoparticle
Engineering (General). Civil engineering (General)
TA1-2040
S.E. Ghasemi
Sina Gouran
Ali Zolfagharian
Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
description The main objective of current study is investigation on thermo-hydraulic behavior of nanofluids in a sinusoidal wavy channel as a novel geometry under influences of thermophoresis and Brownian motion. Differential quadrature method and optimal homotopy asymptotic scheme have been employed to solve the momentum, continuity, energy and nanoparticle fraction equations. The validity of the proposed approaches is evaluated by comparing with previously published results. The impacts of some other physical parameters on temperature, nanoparticle concentration and velocity profiles will be analyzed in details. For instance, the results indicate that increment of the thermophoresis leads to enhance in values of temperature distribution. Also, the volume fraction of nanoparticle enhances by decreasing the parameter of thermophoresis.
format article
author S.E. Ghasemi
Sina Gouran
Ali Zolfagharian
author_facet S.E. Ghasemi
Sina Gouran
Ali Zolfagharian
author_sort S.E. Ghasemi
title Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
title_short Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
title_full Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
title_fullStr Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
title_full_unstemmed Thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
title_sort thermal and hydrodynamic analysis of a conducting nanofluid flow through a sinusoidal wavy channel
publisher Elsevier
publishDate 2021
url https://doaj.org/article/f644ac8d04d34984af736a8b3ce77d15
work_keys_str_mv AT seghasemi thermalandhydrodynamicanalysisofaconductingnanofluidflowthroughasinusoidalwavychannel
AT sinagouran thermalandhydrodynamicanalysisofaconductingnanofluidflowthroughasinusoidalwavychannel
AT alizolfagharian thermalandhydrodynamicanalysisofaconductingnanofluidflowthroughasinusoidalwavychannel
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