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Anomalous increase in specific heat of binary molten salt-based graphite nanofluids for thermal energy storageoa mark
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Publication Year
2018-08-05
Publisher
MDPI AG
Citation
Applied Sciences (Switzerland), Vol.8
Keyword
Compressed liquid layerMolten saltNanofluidsNanoparticle dispersionSpecific heatThermal energy storage
All Science Classification Codes (ASJC)
Materials Science (all)InstrumentationEngineering (all)Process Chemistry and TechnologyComputer Science ApplicationsFluid Flow and Transfer Processes
Abstract
An anomalous increase of the specific heat was experimentally observed in molten salt nanofluids using a differential scanning calorimeter. Binary carbonate molten salt mixtures were used as a base fluid, and the base salts were doped with graphite nanoparticles. Specific heat measurements of the nanofluids were performed to examine the effects of the composition of two salts consisting of the base fluid. In addition, the effect of the nanoparticle concentration was investigated as the concentration of the graphite nanoparticles was varied from 0.025 to 1.0 wt %. Moreover, the dispersion homogeneity of the nanoparticles was explored by increasing amount of surfactant in the synthesis process of the molten salt nanofluids. The results showed that the specific heat of the nanofluid was enhanced by more than 30% in the liquid phase and by more than 36% in the solid phase at a nanoparticle concentration of 1 wt %. It was also observed that the concentration and the dispersion homogeneity of nanoparticles favorably affected the specific heat enhancement of the molten salt nanofluids. The dispersion status of graphite nanoparticles into the salt mixtures was visualized via scanning electron microscopy. The experimental results were explained according to the nanoparticle-induced compressed liquid layer structure of the molten salts.
ISSN
2076-3417
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/30668
DOI
https://doi.org/10.3390/app8081305
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Type
Article
Funding
This work was supported partly by the New Faculty Research Fund of Ajou University and partly by the Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (NRF-2018RIA2B2001082).Acknowledgments: This work was supported partly by the New Faculty Research Fund of Ajou University and partly by the Basic Science Research Program through the National Research Foundation of Korea (NRF) funded by the Ministry of Education (NRF-2018RIA2B2001082).
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Kim, Hyun Jung 김현정
Department of Mechanical Engineering
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