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A theoretical model for the magnetohydrodynamic natural convection of a CNT-water nanofluid incorporating a renovated Hamilton-Crosser model

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Auteur
Benos L.T., Karvelas E.G., Sarris I.E.
Date
2019
Language
en
DOI
10.1016/j.ijheatmasstransfer.2019.01.148
Sujet
Carbon nanotubes
Deterioration
Flow of fluids
Heat transfer
Magnetohydrodynamics
Nanometals
Nanoparticles
Natural convection
Yarn
Asymptotic results
Interfacial nanolayers
Nanofluids
Nanoparticle shape
Nanoparticle volume fractions
Shallow cavities
Solid nanoparticles
Theoretical modeling
Nanofluidics
Elsevier Ltd
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Résumé
The present study pertains to the laminar two-dimensional magnetohydrodynamic natural convection in a shallow cavity utilizing a Carbon Nanotube (CNT)-water nanofluid which is internally heated by volumetrically heat sources. The theoretical model comprehends the effect of the nanoparticle volume fraction and its size. Furthermore, the role of an interfacial nanolayer, which is adjacent to the solid particles, is taken into account as well as the shape of the latter. In a nutshell, increasing the concentration of the CNTs results in deceleration of the fluid flow and, thus, in deterioration of the heat transfer. Besides, the shape of the solid nanoparticles seems to be of great importance regarding the cooling process, since the elongation of them leads to bigger thermal conductivities that promotes conduction over convection heat transfer. Finally, the ratio of the nanolayer thickness over the radius of the particle influences the heat in the nanofluid and, as a consequence, the entire heat transfer. The asymptotic results appear to be particularly helpful for the understanding of such an interesting and fundamental problem which emerges in a lot of industrial applications. © 2019
URI
http://hdl.handle.net/11615/71585
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