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Impact of variable fluid properties on forced convection of Fe3O4/CNT/water hybrid nanofluid in a double-pipe mini-channel heat exchanger

Shahsavar, Amin; Godini, Ali; Talebizadeh Sardari, Pouyan; Toghraie, Davood; Salehipour, Hamzeh

Authors

Amin Shahsavar

Ali Godini

Davood Toghraie

Hamzeh Salehipour



Abstract

The objective of this study is to assess the hydrothermal performance of a non-Newtonian hybrid nanofluid with temperature-dependent thermal conductivity and viscosity compared with a Newtonian hybrid nanofluid with constant thermophysical properties. A counter-current double-pipe mini-channel heat exchanger is studied to analyze the effects of the hybrid nanofluid. The nanofluid is employed as the coolant in the tube side, while the hot water flows in the annulus side. Two different nanoparticles including tetramethylammonium hydroxide-coated Fe3O4 (magnetite) nanoparticles and gum arabic-coated carbon nanotubes are used to prepare the water-based hybrid nanofluid. The results demonstrated that the non-Newtonian hybrid nanofluid always has a higher heat transfer rate, overall heat transfer coefficient, and effectiveness than those of the Newtonian hybrid nanofluid, while the opposite is true for the pressure drop, pumping power, and performance evaluation criterion. Supposing that the Fe3O4-carbon nanotube/water hybrid nanofluid is a Newtonian fluid with constant thermal conductivity and viscosity, there leads to large error in the computation of pressure drop (1.5–9.71%), pumping power (1.5–9.71%), and performance evaluation criterion (18.24–19.60%), whereas the errors in the computation of heat transfer rate, overall heat transfer coefficient, and effectiveness are not considerable (less than 2.91%).

Citation

Shahsavar, A., Godini, A., Talebizadeh Sardari, P., Toghraie, D., & Salehipour, H. (2019). Impact of variable fluid properties on forced convection of Fe3O4/CNT/water hybrid nanofluid in a double-pipe mini-channel heat exchanger. Journal of Thermal Analysis and Calorimetry, 137(3), 1031-1043. https://doi.org/10.1007/s10973-018-07997-6

Journal Article Type Article
Acceptance Date Dec 26, 2018
Online Publication Date Jan 9, 2019
Publication Date Jan 9, 2019
Deposit Date Feb 8, 2019
Publicly Available Date Jan 10, 2020
Journal Journal of Thermal Analysis and Calorimetry
Print ISSN 1388-6150
Electronic ISSN 1588-2926
Publisher Springer Verlag
Peer Reviewed Peer Reviewed
Volume 137
Issue 3
Pages 1031-1043
DOI https://doi.org/10.1007/s10973-018-07997-6
Keywords Physical and Theoretical Chemistry; Condensed Matter Physics
Public URL https://nottingham-repository.worktribe.com/output/1531379
Publisher URL https://link.springer.com/article/10.1007%2Fs10973-018-07997-6

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