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A Simple Approach for Heat Transfer Enhancement of Carbon Nanofluids in Aqueous Media

Authors
Dovjuu, OtgonbayarKim, SedongLee, AjeongKim, JunhyoNoh, JungpilHuh, SunchulChoi, ByeongkeunJeong, Hyomin
Issue Date
Apr-2020
Publisher
AMER SCIENTIFIC PUBLISHERS
Keywords
Carbon Nanotubes; Graphene; Nanocellulose; Dispersion; Thermal Conductivity; Electrical Conductivity
Citation
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, v.20, no.4, pp.2337 - 2343
Indexed
SCIE
Journal Title
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY
Volume
20
Number
4
Start Page
2337
End Page
2343
URI
https://scholarworks.bwise.kr/gnu/handle/sw.gnu/6764
DOI
10.1166/jnn.2020.17375
ISSN
1533-4880
Abstract
Nanofluids are considered alternative heat transfer fluids because of their excellent thermal and electronic conductivities. Recently, carbon nanomaterials such as carbon nanotubes and graphene have been considered to fabricate enhanced heat transfer nanofluids, but using them to prepare stable nanofluids remains challenging because of their hydrophobicity. Herein, a stable aqueous graphene and carbon nanotube dispersion was prepared using nanostructured cellulose without any additional chemicals. The dispersibility of graphene in cellulose was compared with that in conventional surfactants such as sodium dodecyl benzene sulfonate, sodium dodecyl sulfate, and lauryl betaine. In addition, the optimal mass ratio for the carbon material to cellulose was determined and improvement in the thermal and electrical conductivity of the nanofluid was investigated. The dispersion ability of cellulose was more significant than that of surfactants, and it played a major role in improving the thermal and electrical conductivity. The highest thermal conductivity obtained for the graphene cellulose nanofluid was 615.23 W/m*K for a mass ratio of 2:1 at 20 degrees C. The electrical conductivity of the nanofluids increased remarkably with an increase in the cellulose content. Furthermore, the obtained nanofluid improved the heat transfer performance dramatically. It can be assumed that our proposed system can be used to ensure numerous economic and environmental benefits in the domain of heat transfer fluids.
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해양과학대학 (스마트자동화공학과)
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