Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels

A numerical study is carried out to investigate the effects of different geometrical parameters and various nanofluids on the thermal performance of rib-grooved channels under uniform heat flux. The continuity, momentum and energy equations are solved by using the finite volume method (FVM). Three d...

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Main Authors: Navaei, Ali S., Mohammed, Hussein A., Munisamy, Kannan M., Yarmand, Hooman, Gharehkhani, Samira
Format: Article
Published: Elsevier 2015
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Online Access:http://eprints.utm.my/id/eprint/55560/
http://dx.doi.org/10.1016/j.powtec.2015.06.009
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spelling my.utm.555602017-02-15T04:37:28Z http://eprints.utm.my/id/eprint/55560/ Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels Navaei, Ali S. Mohammed, Hussein A. Munisamy, Kannan M. Yarmand, Hooman Gharehkhani, Samira TJ Mechanical engineering and machinery A numerical study is carried out to investigate the effects of different geometrical parameters and various nanofluids on the thermal performance of rib-grooved channels under uniform heat flux. The continuity, momentum and energy equations are solved by using the finite volume method (FVM). Three different rib-groove shapes are studied (rectangular, semi-circular and trapezoidal). Four different types of nanoparticles, Al2O3, CuO, SiO2 and ZnO with different volume fractions in the range of 1% to 4% and different nanoparticle diameters in the range of 20nm to 60nm, are dispersed in the base fluids such as water, glycerin and ethylene glycol. The Reynolds number varies from 5000 to 25,000. To optimize the shape of rib-groove channels different rib-groove heights from 0.1Dh (4mm) to 0.2Dh (8mm) and rib-groove pitch from 5e (20mm) to 7e (56mm) are examined. Simulation results reveal that the semi-circular rib-groove with height of 0.2Dh (8mm) and pitch equals to 6e (48mm) has the highest Nusselt number. The nanofluid containing SiO2 has the highest Nusselt number compared with other types. The Nusselt number rises as volume fraction increases, and it declines as the nanoparticle diameter increases. The glycerin-SiO2 nanofluid has the best heat transfer compared to other base fluids. It is also observed that in the case of using nanofluid by changing parameters such as nanoparticle diameter, volume fraction and base fluids the skin friction factor has no significant changes Elsevier 2015-12 Article PeerReviewed Navaei, Ali S. and Mohammed, Hussein A. and Munisamy, Kannan M. and Yarmand, Hooman and Gharehkhani, Samira (2015) Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels. Powder Technology, 286 . pp. 332-341. ISSN 0032-5910 http://dx.doi.org/10.1016/j.powtec.2015.06.009 DOI:10.1016/j.powtec.2015.06.009
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/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Navaei, Ali S.
Mohammed, Hussein A.
Munisamy, Kannan M.
Yarmand, Hooman
Gharehkhani, Samira
Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
description A numerical study is carried out to investigate the effects of different geometrical parameters and various nanofluids on the thermal performance of rib-grooved channels under uniform heat flux. The continuity, momentum and energy equations are solved by using the finite volume method (FVM). Three different rib-groove shapes are studied (rectangular, semi-circular and trapezoidal). Four different types of nanoparticles, Al2O3, CuO, SiO2 and ZnO with different volume fractions in the range of 1% to 4% and different nanoparticle diameters in the range of 20nm to 60nm, are dispersed in the base fluids such as water, glycerin and ethylene glycol. The Reynolds number varies from 5000 to 25,000. To optimize the shape of rib-groove channels different rib-groove heights from 0.1Dh (4mm) to 0.2Dh (8mm) and rib-groove pitch from 5e (20mm) to 7e (56mm) are examined. Simulation results reveal that the semi-circular rib-groove with height of 0.2Dh (8mm) and pitch equals to 6e (48mm) has the highest Nusselt number. The nanofluid containing SiO2 has the highest Nusselt number compared with other types. The Nusselt number rises as volume fraction increases, and it declines as the nanoparticle diameter increases. The glycerin-SiO2 nanofluid has the best heat transfer compared to other base fluids. It is also observed that in the case of using nanofluid by changing parameters such as nanoparticle diameter, volume fraction and base fluids the skin friction factor has no significant changes
format Article
author Navaei, Ali S.
Mohammed, Hussein A.
Munisamy, Kannan M.
Yarmand, Hooman
Gharehkhani, Samira
author_facet Navaei, Ali S.
Mohammed, Hussein A.
Munisamy, Kannan M.
Yarmand, Hooman
Gharehkhani, Samira
author_sort Navaei, Ali S.
title Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
title_short Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
title_full Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
title_fullStr Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
title_full_unstemmed Heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
title_sort heat transfer enhancement of turbulent nanofluid flow over various types of internally corrugated channels
publisher Elsevier
publishDate 2015
url http://eprints.utm.my/id/eprint/55560/
http://dx.doi.org/10.1016/j.powtec.2015.06.009
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score 13.250246