Laminar Forced Convective Heat Transfer to Near-Critical Water in a Tube

  • Lee, Sang-Ho (Division of Mechanical System and Design Engineering, Wonkwang University)
  • Published : 2003.11.01

Abstract

Numerical modeling is carried out to investigate forced convective heat transfer to near-critical water in developing laminar flow through a circular tube. Due to large variations of thermo-physical properties such as density, specific heat, viscosity, and thermal conductivity near thermodynamic critical point, heat transfer characteristics show quite different behavior compared with pure forced convection. With flow acceleration along the tube unusual behavior of heat transfer coefficient and friction factor occurs when the fluid enthalpy passes through pseudocritical point of pressure in the tube. There is also a transition behavior from liquid-like phase to gas-like phase in the developing region. Numerical results with constant heat flux boundary conditions are obtained for reduced pressures from 1.09 to 1.99. Graphical results for velocity, temperature, and heat transfer coefficient with Stanton number are presented and analyzed.

Keywords

References

  1. Dashevsky, Y. M. and Malkovsky, V. I., 1985, 'Heat Exchange with Laminar Upflow of Supercritical Helium in a Gravitational Field,' Cryogenics, Vol. 25, pp. 658-659 https://doi.org/10.1016/0011-2275(85)90122-5
  2. Hall, W. B., 1971, 'Heat Transfer near the Critical Point,' Advances in Heat Transfer, Vol. 7, pp. 1-83 https://doi.org/10.1016/S0065-2717(08)70016-9
  3. Hendricks, R. H. and Simoneau, R. V., 1970, 'Survey of Heat Transfer to Near Critical Fluids,' NASA Technical Note, NASA TN D-5886
  4. Koppel, L. B. and Smith, J. M., 1962, 'Laminar Flow Heat Transfer for Variable Physical Properties,' Journal of Heat Transfer, Vol. 84, No. 2, pp. 157-163 https://doi.org/10.1115/1.3684320
  5. Koshizuka, S., Takano, N. and Ok a, Y., 1995, 'Numerical Analysis of Deterioration Phenomena in Heat Transfer to Supercritical Water,' International Journal of Heat and Mass Transfer, Vol. 38, No. 16, pp. 3077-3084 https://doi.org/10.1016/0017-9310(95)00008-W
  6. Kurganov, V. A. and Kaptilnyi, A. G., 1993, 'Flow Structure and Turbulent Transport of a Supercritical Pressure Fluid in a Vertical Heated Tube under the Conditions of Mixed Convection Experimental Data,' International Journal of Heat and Mass Transfer, Vol. 36, No. 13, pp. 3383-3392 https://doi.org/10.1016/0017-9310(93)90020-7
  7. Lester, H., John, S. G. and George, S. K., 1984, Steam Tables, Hemisphere, New York
  8. Li, L. J., Lin, C. X. and Ebadian, M. A., 1999, 'Turbulent Heat Transfer to Near-critical Water in a Heated Curved Pipe under the Conditions of Mixed Convection,' International Journal of Heat and Mass Transfer, Vol. 42, No. 16, pp. 3147-3158 https://doi.org/10.1016/S0017-9310(98)00365-2
  9. Olson, D., 1999, 'Heat Transfer in Supercritical Carbon Dioxide with Convective Boundary Conditions,' 20th International Congress of Refrigeration, IIR/IIF, Sydney, pp. 1-7
  10. Polyakov, A. J., 1991, 'Heat Transfer under Supercritical Pressures,' Advances in Heat Transfer, Vol. 21, pp. 1-50
  11. Shiralkar, B. S. and Griffith, P., 1969, 'Deterioration in Heat Transfer to Fluids at Supercritical Pressure and High Heat Fluxes,' Journal of Heat Transfer, Vol. 91, No. 1, pp. 27-36 https://doi.org/10.1115/1.3580115
  12. Vlakhov, E. S., Mieopol'skii, Z. L. and Khasanov-agaev, L. R., 1981, 'Heat Transfer to a Supercritical Medium with Mixed Convection and Rising Flow in Heated Tubes,' Teploenergetika, Vol. 28, No. 11, pp. 69-71
  13. Worsoe-Schmidt, P. M. and Leppert, G., 1965, 'Heat Transfer and Friction for Laminar Flow of Gas in a Circular Tube at High Heating Rate,' International Journal of Heat and Mass Transfer, Vol. 8, No. 10, pp. 1281-1301 https://doi.org/10.1016/0017-9310(65)90056-6
  14. Zhou, N. and Krishnan, A., 1995, 'Laminar and Turbulent Heat Transfer in Flow of Supercritical $CO_{2}$,' Proceedings of the 30th ASME National Heat Transfer Conference, Portland, Vol. 5, pp. 53-63