• DocumentCode
    227914
  • Title

    CHF enhancement of Al2O3, TiO2 and Ag nanofluids and effect of nucleate pool boiling time

  • Author

    Ulcay, Mehmed Sitki

  • Author_Institution
    Mech. Eng. Technol. Dept., Hudson Valley Community Coll., Troy, NY, USA
  • fYear
    2014
  • fDate
    27-30 May 2014
  • Firstpage
    756
  • Lastpage
    764
  • Abstract
    Nanofluids are nanometer sized suspended particles in water or other base fluids. They are used for their increased nucleate boiling critical heat flux (CHF) values far beyond compared to pure water or base fluid. Therefore pool boiling heat transfer tests are performed to understand increase in CHF. The pool boiling characteristics and critical heat flux enhancement using nanofluids of dilute dispersions of alumina, titania and silver are studied. High heat transfer rates with high critical heat flux achieved with modest nanoparticle concentrations (<;0.1% by volume). Heater wire used in CHF tests were only on 50μm in diameter. Change in surface structure of heater wire causes increase in CHF. Surface of the heater is covered with porous layer of nanoparticles during nucleate boiling. It is determined to investigate the effects of nucleate boiling time (coating time) during which the heater wire is exposed to deposition of nanoparticles. Results of this study presented that there is a non-linear relationship between the coating time and CHF for short periods of coating times, up to 30 seconds; however this effect loses its impact if the coating duration is elongated. It was also showed that longer periods of coating time increased the CHF but not drastically and the relationship between coating time and CHF is no longer non-linear and can be approximated by a linear line. This study represents an important step in understanding the relationship between CHF and the optimum amount of nanoparticle deposition or amount of porous layer of nanoparticles formed on heater surface with respect to nucleate boiling (coating)/time dependency.
  • Keywords
    alumina; boiling; critical points; flow through porous media; heat transfer; nanofluidics; nanoparticles; silver; suspensions; titanium compounds; two-phase flow; water; Ag-H2O; Al2O3-H2O; CHF enhancement; TiO2-H2O; alumina nanofluid; base fluids; coating duration; coating times; critical heat flux enhancement; dilute dispersions; heat transfer rates; heater surface; heater wire; linear line; nanometer; nanoparticle concentrations; nanoparticle deposition; nonlinear relationship; nucleate boiling critical heat flux values; nucleate boiling time; nucleate boiling/time dependency; nucleate pool boiling time; pool boiling characteristics; pool boiling heat transfer tests; porous layer; pure water; silver nanofluid; size 50 mum; surface structure; suspended particles; time 30 s; titania nanofluid; Coatings; Heat transfer; Heating; Nanofluidics; Nanoparticles; Surface treatment; Wires; CHF; Nanofluid Coating Time Effect; Nucleate Boiling Time; Pool Boiling; Surface Coating;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Thermal and Thermomechanical Phenomena in Electronic Systems (ITherm), 2014 IEEE Intersociety Conference on
  • Conference_Location
    Orlando, FL
  • ISSN
    1087-9870
  • Type

    conf

  • DOI
    10.1109/ITHERM.2014.6892357
  • Filename
    6892357