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Heat transfer performance and transport properties of ZnO–ethylene glycol and ZnO–ethylene glycol–water nanofluid coolants

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  • Suganthi, K.S.
  • Leela Vinodhan, V.
  • Rajan, K.S.

Abstract

Experiments were carried out on preparation and characterization of ZnO–ethylene glycol (EG) and ZnO–ethylene glycol–water nanofluids and analysis of their performance as coolants. Favorable interactions between ZnO nanoparticles and ethylene glycol molecules ensured superior transport properties of ZnO–EG nanofluids. These interactions were utilized during formulation of ZnO–EG–water nanofluids with preservation of ethylene glycol molecules over ZnO nanoparticles’ surface rendering them with better transport properties. ZnO–EG nanofluids containing 4vol.% nanoparticles showed thermal conductivity enhancement of 33.4% and viscosity reduction of 39.2% at 27°C. Similarly, 2vol.% ZnO–EG–water nanofluids showed thermal conductivity enhancement of 17.26% and viscosity reduction of 17.34% at 27°C. Disturbance of hydrogen bonding network of ethylene glycol by ZnO nanoparticles resulted in reduced dispersion viscosity. Empirical models were developed to predict the thermal conductivity enhancement and viscosity reduction of the nanofluids apart from elucidating mechanisms for the same. Transient heat transfer experiments showed that ZnO–EG and ZnO–EG–water nanofluids had better heat absorption characteristics compared to their respective base fluids. The enhancements in heat transfer were proportional to thermal conductivity enhancements, which showed that superior thermal conductivity of nanofluids could be harnessed for cooling applications.

Suggested Citation

  • Suganthi, K.S. & Leela Vinodhan, V. & Rajan, K.S., 2014. "Heat transfer performance and transport properties of ZnO–ethylene glycol and ZnO–ethylene glycol–water nanofluid coolants," Applied Energy, Elsevier, vol. 135(C), pages 548-559.
  • Handle: RePEc:eee:appene:v:135:y:2014:i:c:p:548-559
    DOI: 10.1016/j.apenergy.2014.09.023
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    6. Minea, Alina Adriana, 2017. "Challenges in hybrid nanofluids behavior in turbulent flow: Recent research and numerical comparison," Renewable and Sustainable Energy Reviews, Elsevier, vol. 71(C), pages 426-434.
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    8. Yedhu Krishnan, R. & Manikandan, S. & Suganthi, K.S. & Leela Vinodhan, V. & Rajan, K.S., 2016. "Novel copper – Propylene glycol nanofluid as efficient thermic fluid for potential application in discharge cycle of thermal energy storage," Energy, Elsevier, vol. 107(C), pages 482-492.
    9. Suganthi, K.S. & Rajan, K.S., 2017. "Metal oxide nanofluids: Review of formulation, thermo-physical properties, mechanisms, and heat transfer performance," Renewable and Sustainable Energy Reviews, Elsevier, vol. 76(C), pages 226-255.
    10. Sani, Elisa & Papi, Nicolò & Mercatelli, Luca & Żyła, Gaweł, 2018. "Graphite/diamond ethylene glycol-nanofluids for solar energy applications," Renewable Energy, Elsevier, vol. 126(C), pages 692-698.
    11. Gupta, Munish & Singh, Vinay & Kumar, Rajesh & Said, Z., 2017. "A review on thermophysical properties of nanofluids and heat transfer applications," Renewable and Sustainable Energy Reviews, Elsevier, vol. 74(C), pages 638-670.
    12. Murshed, S.M. Sohel & Nieto de Castro, C.A., 2016. "Conduction and convection heat transfer characteristics of ethylene glycol based nanofluids – A review," Applied Energy, Elsevier, vol. 184(C), pages 681-695.
    13. Hussien, Ahmed A. & Abdullah, Mohd Z. & Al-Nimr, Moh’d A., 2016. "Single-phase heat transfer enhancement in micro/minichannels using nanofluids: Theory and applications," Applied Energy, Elsevier, vol. 164(C), pages 733-755.
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    15. Manikandan, S. & Rajan, K.S., 2015. "MgO-Therminol 55 nanofluids for efficient energy management: Analysis of transient heat transfer performance," Energy, Elsevier, vol. 88(C), pages 408-416.

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