4.7 Article

Temperature-dependent rheological behavior of nanofluids rich in carbon-based nanoparticles

期刊

JOURNAL OF MOLECULAR LIQUIDS
卷 325, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.molliq.2020.114659

关键词

Nanofluids; Temperature-dependent viscosity; Graphene oxide; Rheological behavior; Brownian motion; Percolation

资金

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [NRF-2018R1C1B6002339]

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The temperature-dependent viscosity of nanofluids consisting carbon-based nanoparticles (CBNs) was investigated with steady-shear viscometry. The study found that the viscosity of nanofluids decreased until 30 degrees C and increased thereafter, with CBN nanofluids having lower dynamic viscosity than the base fluid. The size of percolation participants and their interaction with nanoparticles influenced the behavior of nanofluids, resulting in a reduction in dynamic viscosity.
Herein, the temperature-dependent viscosity of nanofluids consisting carbon-based nanoparticles (CBNs), such as graphite. graphene oxide modified with oleic acid, and reduced graphene oxide, were investigated with steady-shear viscometry. The viscosity of nanofluids relative to that of the base fluid decreased until 30 degrees C and increased thereafter. Moreover, the CBN nanofluids had lower dynamic viscosity than the base fluid. Partide size distribution analysis revealed a polydispersed system of nanofluids, and intrinsic viscosity studies investigated the contribution of completely nanosized particles to the viscous behavior. Based on their lateral size, the CBNs played the role of percolation participants or Brownian motion participants. It was found that the total numbers of percolation participants varied among different types of CBN nanofluids. Furthermore, the size of the percolation participants influenced to optimize the number of nanoparticles undergoing Brownian motion. Regarding size effects and the affinity of the CBNs with the base fluid, the interaction between nanoparticles with different lateral sizes induced not only temperature-dependent viscosity in the nanofluids but also a reduction in dynamic viscosity. The mechanism underlying this lower viscosity was explained by a combination of percolation effects and nanoparticle structuring. (C) 2020 Elsevier B.V. All rights reserved.

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