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Enhancing Heat Transfer Behaviour of Ethylene Glycol by the Introduction of Silicon Carbide Nanoparticles: An Experimental and Molecular Dynamics Simulation Study

  • Xianjun Hou
  • , Chen Chu
  • , Hua Jiang*
  • , Mohamed Kamal Ahmed Ali
  • , Karl D. Dearn
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

As the critical component of automotive engine coolant, ethylene glycol (E.G.) significantly matters in heat dissipation. In this study, the key aim is to investigate the heat transfer behaviour of E.G. as nano-additives base fluid. The heat transfer capability of E.G./SiC nanofluid (N.F.) was experimentally and theoretically evaluated via transient hot wire methods and equilibrium molecular dynamics (EMD) simulation, respectively. M.D. simulation exhibited a great ability to accurately forecast the thermal conductivity of N.F. compared with the experiment results. The results confirmed that the thermal stability of N.F. is relatively greater than that of E.G. base fluids. An improvement mechanism of thermal conductivity and thermal stability under an atomic scale via the analysis of mean square displacement (MSD) and radial distribution function (RDF) calculation was elaborately presented. Ultimately, the results indicated that the diffusion effect and the increasing transition rate of liquid atoms are responsible for thermal conductivity enhancement.

Original languageEnglish
Article number3011
Number of pages18
JournalMolecules
Volume28
Issue number7
DOIs
Publication statusPublished - 28 Mar 2023

Bibliographical note

Copyright:
© 2023 by the authors.

Keywords

  • interface effect
  • molecular dynamic
  • nanofluids
  • thermophysical performance

ASJC Scopus subject areas

  • Analytical Chemistry
  • Chemistry (miscellaneous)
  • Molecular Medicine
  • Pharmaceutical Science
  • Drug Discovery
  • Physical and Theoretical Chemistry
  • Organic Chemistry

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