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Numerical simulation and sensitivity analysis of effective parameters on natural convection and entropy generation in a wavy surface cavity filled with a nanofluid using RSM

Author:
کامل میلانی شیروان
,
Soroush Mirzakhanlari
,
Ali J. Chamkha
,
مجتبی ماموریان
,
kamel Milani Shirvan
,
Mojtaba Mamourian
Year
: 2016
Abstract: In this work, a 2-D numerical investigation and a sensitivity analysis have been done on the natural convection heat transfer in a wavy surface cavity filled with a nanofluid. For this purpose, the effects of three parameters, the Rayleigh number (103 ≤ Ra ≤ 105), nanoparticles volume fraction (0.00 ≤ ϕ ≤ 0.04) and the shape of the nanoparticles (spherical, blade and cylindrical) are studied. Discretization of the governing equations is performed using a finite volume method and solved with the SIMPLE algorithm. The effective parameters analysis is processed utilizing the Response Surface Methodology. Comparison with previously published work is performed and the results are found to be in good agreement. The results showed that increasing the Rayleigh number and ϕ, increases the mean Nusselt number and the total entropy generation. Also, the nanofluids with spherical and cylindrical shaped nanoparticles have the highest and lowest Nusselt numbers and entropy generations, respectively. The sensitivity of the mean Nusselt number and entropy generation ratio to Ra and ϕ is found to be positive whereas it is predicted to be negative to nanoparticles shape.
URI: https://libsearch.um.ac.ir:443/fum/handle/fum/3358563
Keyword(s): Response Surface Methodology,Sensitivity Analysis,Wavy Surface Cavity,Natural Convection,Entropy Generation,Nanoparticles Shape
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    Numerical simulation and sensitivity analysis of effective parameters on natural convection and entropy generation in a wavy surface cavity filled with a nanofluid using RSM

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contributor authorکامل میلانی شیروانen
contributor authorSoroush Mirzakhanlarien
contributor authorAli J. Chamkhaen
contributor authorمجتبی ماموریانen
contributor authorkamel Milani Shirvanfa
contributor authorMojtaba Mamourianfa
date accessioned2020-06-06T13:31:39Z
date available2020-06-06T13:31:39Z
date issued2016
identifier urihttps://libsearch.um.ac.ir:443/fum/handle/fum/3358563?locale-attribute=en
description abstractIn this work, a 2-D numerical investigation and a sensitivity analysis have been done on the natural convection heat transfer in a wavy surface cavity filled with a nanofluid. For this purpose, the effects of three parameters, the Rayleigh number (103 ≤ Ra ≤ 105), nanoparticles volume fraction (0.00 ≤ ϕ ≤ 0.04) and the shape of the nanoparticles (spherical, blade and cylindrical) are studied. Discretization of the governing equations is performed using a finite volume method and solved with the SIMPLE algorithm. The effective parameters analysis is processed utilizing the Response Surface Methodology. Comparison with previously published work is performed and the results are found to be in good agreement. The results showed that increasing the Rayleigh number and ϕ, increases the mean Nusselt number and the total entropy generation. Also, the nanofluids with spherical and cylindrical shaped nanoparticles have the highest and lowest Nusselt numbers and entropy generations, respectively. The sensitivity of the mean Nusselt number and entropy generation ratio to Ra and ϕ is found to be positive whereas it is predicted to be negative to nanoparticles shape.en
languageEnglish
titleNumerical simulation and sensitivity analysis of effective parameters on natural convection and entropy generation in a wavy surface cavity filled with a nanofluid using RSMen
typeJournal Paper
contenttypeExternal Fulltext
subject keywordsResponse Surface Methodologyen
subject keywordsSensitivity Analysisen
subject keywordsWavy Surface Cavityen
subject keywordsNatural Convectionen
subject keywordsEntropy Generationen
subject keywordsNanoparticles Shapeen
journal titleNumerical Heat Transfer Part A: Applicationsfa
pages1157-1177
journal volume70
journal issue10
identifier linkhttps://profdoc.um.ac.ir/paper-abstract-1059006.html
identifier articleid1059006
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