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COMPARATIVE STUDY ON STEADY AND UNSTEADY HEAT TRANSFER ANALYSIS OF A SPHERICAL ELEMENT USING AIR/WATER MIST TWO-PHASE FLOW

ABSTRACT
In this study, two approaches to investigating the process cooling of a heated sphere were performed using air as well as air/water mist two-phase flow. Steady-state and unsteady heat transfer analysis were compared in the terms of the aver-age surface temperature and heat transfer rate between the sphere surfaces and the cooling fluid. When the Bi < 0.1, the temperature variation inside sphere can be neglected and the wildly known lumped capacitance model can be applied to estimate the heat transfer coefficient by measuring the sphere surface temperature. The effect of the different factors such as the inlet Reynolds numbers, surface temperature and water mist rate on heat transfer characteristics are examined. The experimental results showed that the presence of water mist leads to a significant increase in heat transfer rate over the use of air coolant alone. Also, the un-steady thermal behaviors of the water mist impingement on the heated surface and dynamic-state of cooling process changing over the sphere surface were analyzed experimentally based on the unsteady surface temperature measurements. The experimental results of the unsteady heat transfer were compared to the results obtained from steady-state estimation under the corresponding surface temperature of the sphere. Moreover, the new proposed empirical correlation for the Nusselt number based on the present experimental data are given for practical uses. Results reasonably agree well within ±3.8%.
KEYWORDS
PAPER SUBMITTED: 2019-05-27
PAPER REVISED: 2019-12-21
PAPER ACCEPTED: 2019-12-26
PUBLISHED ONLINE: 2020-02-08
DOI REFERENCE: https://doi.org/10.2298/TSCI190527055A
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2021, VOLUME 25, ISSUE Issue 1, PAGES [625 - 635]
REFERENCES
  1. Sharma, A., Sahu, S., An experimental study on heat transfer and rewetting behavior of hot horizontal downward facing hot surface by mist jet impingement, Applied Thermal Engineering, 151, (2019), pp.459-474.
  2. Zhong, Y., et al., CFD simulation on the flow and heat transfer characteristics of mist flow in wire-wrapped rod bundle, Nuclear Engineering and Design, 345, (2019), pp.62-73.
  3. Wang, T., Dhanasekaran, T., Calibration of a Computational Model to Predict Mist/Steam Impinging Jets Cooling With an Application to Gas Turbine Blades, Journal of Heat Transfer, 132 (2010), 12, pp.122201.
  4. Terekhov, V., Pakhomov, M., Numerical study of heat transfer in a laminar mist flow over a isothermal flat plate, International Journal of Heat and Mass Transfer, 45, (2002), 10, pp.2077-2085.
  5. Terekhov, V., Pakhomov, M., Numerical simulations of hydrodynamics and convective heat transfer in a turbulent tube mist flow, International Journal of Heat and Mass Transfer, 46, (2003), 9, pp.1503-1517.
  6. Li, X., Wang, T., Simulation of Film Cooling Enhancement With Mist Injection, Journal of Heat Transfer, 128 (2006), 6, pp.509.
  7. Li, X., Wang, T., Effects of Various Modeling Schemes on Mist Film Cooling Simulation, Journal of Heat Transfer, 129 (2007), 4, pp.472.
  8. Dhanasekaran, T., Wang, T., Computational analysis of mist/air cooling in a two-pass rectangular rotating channel with 45-deg angled rib turbulators, International Journal of Heat and Mass Transfer, 61 (2013), pp.554-564.
  9. Allais, I., et al., Modelling cooling kinetics of a stack of spheres during mist chilling, Journal of Food Engineering, 72 (2006), 2, pp.197-209.
  10. Allais, I., Alvarez, G., Analysis of heat transfer during mist chilling of a packed bed of spheres simulating foodstuffs, Journal of Food Engineering, 49 (2001), 1, pp.37-47.
  11. Hayashi, Y., et al., Study on mist cooling for heat exchangers. 3rd report. Development of high-performance mist cooled heat transfer tubes, Transactions of the Japan Society of Mechanical Engineers Series B, 54 (1988), 505, pp.2617-2623.
  12. Hayashi, Y., et al., Heat transfer from tubes in mist flows, Experimental Heat Transfer, 4 (1991), 4, pp.291-308.
  13. Lienhard V. J.H., Lienhard IV. J.H., A Heat Transfer Textbook, Dover Publications, USA, 2013.
  14. Quinn, C., et al., Heat transfer behaviour of a dilute impinging air-water mist jet at low wall temperatures, International Journal of Heat and Mass Transfer, 111 (2017), pp.1234-1249.
  15. Kumari, N., et al., Analysis of evaporating mist flow for enhanced convective heat transfer, International Journal of Heat and Mass Transfer, 53 (2010), 15-16, pp.3346-3356.
  16. Lang R.J., Ultrasonic atomization of liquid, Acoust. Soc. Am., 34 (1962), 1, pp.6-8.
  17. Abed A., et al., Investigation of heat transfer coefficient of spherical element using infrared thermography (IR) and gas - water droplets (mist) as working medium. IOP Conference Series: Materials Science and Engineering, 481 (2019), pp.012033.
  18. Abernethy, R., et al., ASME Measurement Uncertainty, Journal of Fluids Engineering, 107 (1985), 2, pp.161.
  19. Kline S.J. and McClintock F.A., Describing uncertainties in single sample experiments, Mechanical Engineering, 75 (1953), pp.3-8.
  20. Achenbach E., Heat Transfer from Spheres up to Re = 6 × 106. Proceedings,6th International Heat Transfer Conference, Hemisphere, Washington, DC, 1978, 5.
  21. Romkes, S., et al., CFD modelling and experimental validation of particle-to-fluid mass and heat transfer in a packed bed at very low channel to particle diameter ratio, Chemical Engineering Journal, 96 (2003), 1-3, pp.3-13.
  22. Whitaker, S., Forced convection heat transfer correlations for flow in pipes, past flat plates, single cylinders, single spheres, and for flow in packed beds and tube bundles, AIChE Journal, 18 (1972), 2, pp.361-371.

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