Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids

Aluminum; Copper oxides; Ethylene; Ethylene glycol; Finite volume method; Heat convection; Heat flux; Heat transfer; Heat transfer coefficients; Mixed convection; Nanoparticles; Nusselt number; Polyols; Reynolds number; Volume fraction; Zinc oxide; Annulus; Governing equations; Heat transfer augment...

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Main Authors: Dawood H.K., Mohammed H.A., Sidik N.A.C., Munisamy K.M., Alawi O.A.
Other Authors: 56307856100
Format: Article
Published: Elsevier Ltd 2023
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spelling my.uniten.dspace-232892023-05-29T14:39:09Z Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids Dawood H.K. Mohammed H.A. Sidik N.A.C. Munisamy K.M. Alawi O.A. 56307856100 15837504600 57204852231 15035918600 56108584300 Aluminum; Copper oxides; Ethylene; Ethylene glycol; Finite volume method; Heat convection; Heat flux; Heat transfer; Heat transfer coefficients; Mixed convection; Nanoparticles; Nusselt number; Polyols; Reynolds number; Volume fraction; Zinc oxide; Annulus; Governing equations; Heat transfer augmentation; Heat Transfer enhancement; Nanofluids; Nanoparticle diameter; Nanoparticle volume fractions; Numerical investigations; Nanofluidics In this article, laminar mixed convective heat transfer at different nanofluids flow in an elliptic annulus with constant heat flux boundary condition has been numerically investigated. The three dimensional governing equations (continuity, momentum and energy) are solved using the finite volume method (FVM). The investigation covers Reynolds number and nanoparticle volume fraction in the ranges of 200�1000 and 0�4% respectively. In the present work, four different types of nanofluids are examined in which Al2O3, CuO, SiO2 and ZnO are suspended in the base fluid of ethylene glycol (EG) with different nanoparticle sizes 20, 40, 60 and 80�nm. The results show that SiO2-EG nanofluid has the highest Nusselt number, followed by Al2O3-EG, ZnO-EG, CuO-EG, and lastly pure ethylene glycol. The Nusselt number increased as the nanoparticle volume fraction and Reynolds number increased; however, it decreased as the nanoparticle diameter increased. It is found that the glycerine-SiO2 shows the best heat transfer enhancement compared with other tested base fluids. Comparisons of the present results with those available in the literature are presented and discussed. � 2017 Elsevier Ltd Final 2023-05-29T06:39:09Z 2023-05-29T06:39:09Z 2017 Article 10.1016/j.icheatmasstransfer.2017.02.008 2-s2.0-85011715923 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85011715923&doi=10.1016%2fj.icheatmasstransfer.2017.02.008&partnerID=40&md5=145fc9a1f65a7084cf84e7ed3c07f4af https://irepository.uniten.edu.my/handle/123456789/23289 82 29 39 Elsevier Ltd Scopus
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
description Aluminum; Copper oxides; Ethylene; Ethylene glycol; Finite volume method; Heat convection; Heat flux; Heat transfer; Heat transfer coefficients; Mixed convection; Nanoparticles; Nusselt number; Polyols; Reynolds number; Volume fraction; Zinc oxide; Annulus; Governing equations; Heat transfer augmentation; Heat Transfer enhancement; Nanofluids; Nanoparticle diameter; Nanoparticle volume fractions; Numerical investigations; Nanofluidics
author2 56307856100
author_facet 56307856100
Dawood H.K.
Mohammed H.A.
Sidik N.A.C.
Munisamy K.M.
Alawi O.A.
format Article
author Dawood H.K.
Mohammed H.A.
Sidik N.A.C.
Munisamy K.M.
Alawi O.A.
spellingShingle Dawood H.K.
Mohammed H.A.
Sidik N.A.C.
Munisamy K.M.
Alawi O.A.
Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
author_sort Dawood H.K.
title Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
title_short Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
title_full Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
title_fullStr Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
title_full_unstemmed Heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
title_sort heat transfer augmentation in concentric elliptic annular by ethylene glycol based nanofluids
publisher Elsevier Ltd
publishDate 2023
_version_ 1806427469049233408
score 13.18916