Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles

The development of nanofluid as an innovative class of thermal fluid subsequently inspired use in their engineering applications. As a result, the necessity of experimental work to determine the thermophysical properties of nanofluids affecting heat transfer such as specific heat capacity, viscosity...

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Main Authors: Dilan S. Udawattha, Mahinsasa Narayana, Uditha P.L. Wijayarathne
Format: Article
Language:English
Published: Elsevier 2019-07-01
Series:Journal of King Saud University: Science
Online Access:http://www.sciencedirect.com/science/article/pii/S1018364717307681
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spelling doaj-f5152213ed044e38a3a89fa60abda1282020-11-24T21:52:49ZengElsevierJournal of King Saud University: Science1018-36472019-07-01313412426Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particlesDilan S. Udawattha0Mahinsasa Narayana1Uditha P.L. Wijayarathne2Corresponding author at: University of Moratuwa, Moratuwa, Sri Lanka.; Department of Chemical and Process Engineering, University of Moratuwa, Sri LankaDepartment of Chemical and Process Engineering, University of Moratuwa, Sri LankaDepartment of Chemical and Process Engineering, University of Moratuwa, Sri LankaThe development of nanofluid as an innovative class of thermal fluid subsequently inspired use in their engineering applications. As a result, the necessity of experimental work to determine the thermophysical properties of nanofluids affecting heat transfer such as specific heat capacity, viscosity, thermal conductivity and density. Theoretical models are used in numerical studies of engineering applications to calculate thermophysical properties. This study intends to develop a new correlation for calculating the effective viscosity of nanofluids. In the model, we considered an effect of interfacial layer on the nanoparticle, the interfacial layer on nanoparticle works as a solid like layer in between the base fluid and nanoparticle surface. When nanoparticles are suspended in the base fluid, Brownian motion occurs due to the relative velocity of the base fluid and nanoparticles, which is also incorporated in this model. The correlation developed successfully express in outcome advance the viscosity of a variety of nanofluids, (Al2O3, Fe, hexagonal boron nitride (hBN), ZnO)-Ethylene Glycol, (Al2O3, hBN, SiC)-Ethylene Glycol Water mixture, (CuO, Al2O3, Fe3O4, TiO2, hBN, Graphite, Single-wall carbon nanotube (SWCNT))-water, (Fe3O4)-Toluene. The new correlation was derived from 501 viscosity values of nanofluid, 75% of them are within the correlation coefficient 0.78–1 and mean deviation less than 5%.http://www.sciencedirect.com/science/article/pii/S1018364717307681
collection DOAJ
language English
format Article
sources DOAJ
author Dilan S. Udawattha
Mahinsasa Narayana
Uditha P.L. Wijayarathne
spellingShingle Dilan S. Udawattha
Mahinsasa Narayana
Uditha P.L. Wijayarathne
Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
Journal of King Saud University: Science
author_facet Dilan S. Udawattha
Mahinsasa Narayana
Uditha P.L. Wijayarathne
author_sort Dilan S. Udawattha
title Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
title_short Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
title_full Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
title_fullStr Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
title_full_unstemmed Predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
title_sort predicting the effective viscosity of nanofluids based on the rheology of suspensions of solid particles
publisher Elsevier
series Journal of King Saud University: Science
issn 1018-3647
publishDate 2019-07-01
description The development of nanofluid as an innovative class of thermal fluid subsequently inspired use in their engineering applications. As a result, the necessity of experimental work to determine the thermophysical properties of nanofluids affecting heat transfer such as specific heat capacity, viscosity, thermal conductivity and density. Theoretical models are used in numerical studies of engineering applications to calculate thermophysical properties. This study intends to develop a new correlation for calculating the effective viscosity of nanofluids. In the model, we considered an effect of interfacial layer on the nanoparticle, the interfacial layer on nanoparticle works as a solid like layer in between the base fluid and nanoparticle surface. When nanoparticles are suspended in the base fluid, Brownian motion occurs due to the relative velocity of the base fluid and nanoparticles, which is also incorporated in this model. The correlation developed successfully express in outcome advance the viscosity of a variety of nanofluids, (Al2O3, Fe, hexagonal boron nitride (hBN), ZnO)-Ethylene Glycol, (Al2O3, hBN, SiC)-Ethylene Glycol Water mixture, (CuO, Al2O3, Fe3O4, TiO2, hBN, Graphite, Single-wall carbon nanotube (SWCNT))-water, (Fe3O4)-Toluene. The new correlation was derived from 501 viscosity values of nanofluid, 75% of them are within the correlation coefficient 0.78–1 and mean deviation less than 5%.
url http://www.sciencedirect.com/science/article/pii/S1018364717307681
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