Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model

In this paper, the effect of the Brownian term in natural convection of CuO-Water nanofluid inside a partially filled porous cavity, with internal heat generation has been studied. It is assumed that the viscosity and thermal conductivity of nanofluid consists of a static part and a Brownian part of...

Full description

Bibliographic Details
Main Authors: A. Zehforoosh, S. Hossainpour
Format: Article
Language:English
Published: Nanoscience and Nanotechnology Research Center, University of Kashan 2015-07-01
Series:Journal of Nanostructures
Subjects:
Online Access:http://jns.kashanu.ac.ir/article_11545_ca737e2e0ed4f1c3be033a63ee74793e.pdf
id doaj-7bff4378bf0748acb519f89d1f3fefd5
record_format Article
spelling doaj-7bff4378bf0748acb519f89d1f3fefd52020-11-24T23:58:10ZengNanoscience and Nanotechnology Research Center, University of KashanJournal of Nanostructures2251-78712251-788X2015-07-015323725010.7508/jns.2015.03.00511545Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE ModelA. Zehforoosh0S. Hossainpour1Mechanical Engineering Department, Sahand University of Technology, Sahand, Iran.Mechanical Engineering Department, Sahand University of Technology, Sahand, Iran.In this paper, the effect of the Brownian term in natural convection of CuO-Water nanofluid inside a partially filled porous cavity, with internal heat generation has been studied. It is assumed that the viscosity and thermal conductivity of nanofluid consists of a static part and a Brownian part of which is a function of temperature and the volume fraction of nanofluid. Because of internal heat generation, the two-equation model is used to separately account for the local solid matrix and nanofluid temperatures. To study the effect of Brownian term various parameters such as the Rayleigh number, volume fraction of nanofluid, porosity of the porous matrix, and conductivity ratio of porous media is examined and the flow and heat fields are compared to the results of non-Brownian solution. The results show that Brownian term reduces nanofluid velocity and make smoother streamlines and increasing the thermal conductivity leads to cooling of porous material and achieving more Nusselt. Also the greatest impact of Brownian term is in low-porosity, low Rayleigh or small thermal conductivity of the porous matrix. In addition, mounting the porous material increases the Brownian effect and heat transfer performance of nanofluid but increasing porosity up to 0.8 reduces this effect.http://jns.kashanu.ac.ir/article_11545_ca737e2e0ed4f1c3be033a63ee74793e.pdfBrownian motionHeat generationLocal thermal non-equilibriumNatural convectionNanofluidPorous matrix
collection DOAJ
language English
format Article
sources DOAJ
author A. Zehforoosh
S. Hossainpour
spellingShingle A. Zehforoosh
S. Hossainpour
Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
Journal of Nanostructures
Brownian motion
Heat generation
Local thermal non-equilibrium
Natural convection
Nanofluid
Porous matrix
author_facet A. Zehforoosh
S. Hossainpour
author_sort A. Zehforoosh
title Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
title_short Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
title_full Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
title_fullStr Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
title_full_unstemmed Investigation of Brownian Motion of CuO-Water Nanofluid in a Porous Cavity with Internal Heat Generation by Using of LTNE Model
title_sort investigation of brownian motion of cuo-water nanofluid in a porous cavity with internal heat generation by using of ltne model
publisher Nanoscience and Nanotechnology Research Center, University of Kashan
series Journal of Nanostructures
issn 2251-7871
2251-788X
publishDate 2015-07-01
description In this paper, the effect of the Brownian term in natural convection of CuO-Water nanofluid inside a partially filled porous cavity, with internal heat generation has been studied. It is assumed that the viscosity and thermal conductivity of nanofluid consists of a static part and a Brownian part of which is a function of temperature and the volume fraction of nanofluid. Because of internal heat generation, the two-equation model is used to separately account for the local solid matrix and nanofluid temperatures. To study the effect of Brownian term various parameters such as the Rayleigh number, volume fraction of nanofluid, porosity of the porous matrix, and conductivity ratio of porous media is examined and the flow and heat fields are compared to the results of non-Brownian solution. The results show that Brownian term reduces nanofluid velocity and make smoother streamlines and increasing the thermal conductivity leads to cooling of porous material and achieving more Nusselt. Also the greatest impact of Brownian term is in low-porosity, low Rayleigh or small thermal conductivity of the porous matrix. In addition, mounting the porous material increases the Brownian effect and heat transfer performance of nanofluid but increasing porosity up to 0.8 reduces this effect.
topic Brownian motion
Heat generation
Local thermal non-equilibrium
Natural convection
Nanofluid
Porous matrix
url http://jns.kashanu.ac.ir/article_11545_ca737e2e0ed4f1c3be033a63ee74793e.pdf
work_keys_str_mv AT azehforoosh investigationofbrownianmotionofcuowaternanofluidinaporouscavitywithinternalheatgenerationbyusingofltnemodel
AT shossainpour investigationofbrownianmotionofcuowaternanofluidinaporouscavitywithinternalheatgenerationbyusingofltnemodel
_version_ 1725451350332932096