Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel

A numerical simulation was accomplished in this study that investigated the turbulent force convective heat transfer and pressure drop in straight circular copper pipe with a hydraulic diameter of 0.0005m and 0.1m in length, as given by Lee and Mudawar [11]. The enhancement of heat transfer for wate...

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Main Authors: Che Sidik, Nor Azwadi, Yassin, M. M., Musa, Mutah N.
Format: Article
Language:English
Published: Penerbit UTM Press 2015
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Online Access:http://eprints.utm.my/id/eprint/55728/1/NorAzwadiCheSidik2015_TurbulentForcedConvectiveHeatTransfer.pdf
http://eprints.utm.my/id/eprint/55728/
http://dx.doi.org/10.11113/jt.v75.5293
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spelling my.utm.557282017-11-01T04:16:44Z http://eprints.utm.my/id/eprint/55728/ Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel Che Sidik, Nor Azwadi Yassin, M. M. Musa, Mutah N. TJ Mechanical engineering and machinery A numerical simulation was accomplished in this study that investigated the turbulent force convective heat transfer and pressure drop in straight circular copper pipe with a hydraulic diameter of 0.0005m and 0.1m in length, as given by Lee and Mudawar [11]. The enhancement of heat transfer for water and nanofluids (Fe3O4) under 100 [W/m2] constant heat flux was applied around the wall of the pipe. In this study, standard k-? turbulence model was employed and was performed at a steady state flow, incompressible turbulent flow, and three-dimensional structure. Various volume concentrations of nanoparticles were conducted in the range of 1% to 15% at constant nanoparticle diameter size, which was 32 nm. The heat transfer enhancement was obtained in the range of Reynolds number from 3000 to 10,000. The results displayed an increase in Reynolds number and volume concentrations, as well as an increase in the Nusselt number. The optimum Nusselt number gained was about 5% to 6% of volume concentration at each Reynolds number tested. Besides, with the increase of Reynolds number, the variation pressure saw a dropped for inlet, whereas an increase in the outlet section. Moreover, the increase in volume concentration also caused a small increment in the pressure drop compared to pure water. Penerbit UTM Press 2015-09-03 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/55728/1/NorAzwadiCheSidik2015_TurbulentForcedConvectiveHeatTransfer.pdf Che Sidik, Nor Azwadi and Yassin, M. M. and Musa, Mutah N. (2015) Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel. Jurnal Teknologi, 75 (11). pp. 11-15. ISSN 0127-9696 http://dx.doi.org/10.11113/jt.v75.5293 DOI:10.11113/jt.v75.5293
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Che Sidik, Nor Azwadi
Yassin, M. M.
Musa, Mutah N.
Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
description A numerical simulation was accomplished in this study that investigated the turbulent force convective heat transfer and pressure drop in straight circular copper pipe with a hydraulic diameter of 0.0005m and 0.1m in length, as given by Lee and Mudawar [11]. The enhancement of heat transfer for water and nanofluids (Fe3O4) under 100 [W/m2] constant heat flux was applied around the wall of the pipe. In this study, standard k-? turbulence model was employed and was performed at a steady state flow, incompressible turbulent flow, and three-dimensional structure. Various volume concentrations of nanoparticles were conducted in the range of 1% to 15% at constant nanoparticle diameter size, which was 32 nm. The heat transfer enhancement was obtained in the range of Reynolds number from 3000 to 10,000. The results displayed an increase in Reynolds number and volume concentrations, as well as an increase in the Nusselt number. The optimum Nusselt number gained was about 5% to 6% of volume concentration at each Reynolds number tested. Besides, with the increase of Reynolds number, the variation pressure saw a dropped for inlet, whereas an increase in the outlet section. Moreover, the increase in volume concentration also caused a small increment in the pressure drop compared to pure water.
format Article
author Che Sidik, Nor Azwadi
Yassin, M. M.
Musa, Mutah N.
author_facet Che Sidik, Nor Azwadi
Yassin, M. M.
Musa, Mutah N.
author_sort Che Sidik, Nor Azwadi
title Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
title_short Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
title_full Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
title_fullStr Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
title_full_unstemmed Turbulent-forced convective heat transfer and pressure drop analysis of FE3O4 magnetic nanofluid in a circular microchannel
title_sort turbulent-forced convective heat transfer and pressure drop analysis of fe3o4 magnetic nanofluid in a circular microchannel
publisher Penerbit UTM Press
publishDate 2015
url http://eprints.utm.my/id/eprint/55728/1/NorAzwadiCheSidik2015_TurbulentForcedConvectiveHeatTransfer.pdf
http://eprints.utm.my/id/eprint/55728/
http://dx.doi.org/10.11113/jt.v75.5293
_version_ 1643653883619180544
score 13.160551