Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil

The basic idea of nanofluid was to enhance the thermal conductivity of base fluid. However, the classical nanofluid models have some drastic limitations, i.e. they cannot describe a class of fluids that have certain microscopic characters arising from the microrotation and local structure of the flu...

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Main Authors: Abid, Hussanan, Mohd Zuki, Salleh, Sharidan, Shafie, Khan, Ilyas
Format: Article
Language:English
Published: Elsevier 2017
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/1/Convection%20heat%20transfer%20in%20micropolar%20nanofluids%20with%20oxide%20nanoparticles%20in%20water%2C%20kerosene%20and%20engine%20oil.pdf
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spelling ump-170992017-09-11T08:22:02Z http://umpir.ump.edu.my/id/eprint/17099/ Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil Abid, Hussanan Mohd Zuki, Salleh Sharidan, Shafie Khan, Ilyas Q Science (General) The basic idea of nanofluid was to enhance the thermal conductivity of base fluid. However, the classical nanofluid models have some drastic limitations, i.e. they cannot describe a class of fluids that have certain microscopic characters arising from the microrotation and local structure of the fluid elements. Therefore, the present work is one of the infrequent contributions that describes the microrotation and microinertia characteristics of nanofluids. More exactly, in this work, the unsteady free convection flow of micropolar nanofluids is investigated over a vertical plate. Five types of oxide nanoparticles namely copper oxide, titanium oxide, alumina oxide, iron oxide and graphene oxide are suspended in three different types of fluids such as water, kerosene and engine oil. Exact solutions of the governing problem are obtained by the Laplace transform method. Solutions for conventional or regular nanofluid is also recovered as a special case. Temperature of graphene oxide suspended micropolar nanofluid is higher than other oxide nanoparticles based nanofluids. Elsevier 2017-03 Article PeerReviewed application/pdf en http://umpir.ump.edu.my/id/eprint/17099/1/Convection%20heat%20transfer%20in%20micropolar%20nanofluids%20with%20oxide%20nanoparticles%20in%20water%2C%20kerosene%20and%20engine%20oil.pdf Abid, Hussanan and Mohd Zuki, Salleh and Sharidan, Shafie and Khan, Ilyas (2017) Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil. Journal of Molecular Liquids, 229. pp. 482-488. ISSN 0167-7322 https://doi.org/10.1016/j.molliq.2016.12.040 DOI: 10.1016/j.molliq.2016.12.040
repository_type Digital Repository
institution_category Local University
institution Universiti Malaysia Pahang
building UMP Institutional Repository
collection Online Access
language English
topic Q Science (General)
spellingShingle Q Science (General)
Abid, Hussanan
Mohd Zuki, Salleh
Sharidan, Shafie
Khan, Ilyas
Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
description The basic idea of nanofluid was to enhance the thermal conductivity of base fluid. However, the classical nanofluid models have some drastic limitations, i.e. they cannot describe a class of fluids that have certain microscopic characters arising from the microrotation and local structure of the fluid elements. Therefore, the present work is one of the infrequent contributions that describes the microrotation and microinertia characteristics of nanofluids. More exactly, in this work, the unsteady free convection flow of micropolar nanofluids is investigated over a vertical plate. Five types of oxide nanoparticles namely copper oxide, titanium oxide, alumina oxide, iron oxide and graphene oxide are suspended in three different types of fluids such as water, kerosene and engine oil. Exact solutions of the governing problem are obtained by the Laplace transform method. Solutions for conventional or regular nanofluid is also recovered as a special case. Temperature of graphene oxide suspended micropolar nanofluid is higher than other oxide nanoparticles based nanofluids.
format Article
author Abid, Hussanan
Mohd Zuki, Salleh
Sharidan, Shafie
Khan, Ilyas
author_facet Abid, Hussanan
Mohd Zuki, Salleh
Sharidan, Shafie
Khan, Ilyas
author_sort Abid, Hussanan
title Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
title_short Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
title_full Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
title_fullStr Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
title_full_unstemmed Convection Heat Transfer in Micropolar Nanofluids with Oxide Nanoparticles in Water, Kerosene and Engine Oil
title_sort convection heat transfer in micropolar nanofluids with oxide nanoparticles in water, kerosene and engine oil
publisher Elsevier
publishDate 2017
url http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/
http://umpir.ump.edu.my/id/eprint/17099/1/Convection%20heat%20transfer%20in%20micropolar%20nanofluids%20with%20oxide%20nanoparticles%20in%20water%2C%20kerosene%20and%20engine%20oil.pdf
first_indexed 2023-09-18T22:23:21Z
last_indexed 2023-09-18T22:23:21Z
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