The heat transfer characteristics of supercritical $CO_2$ in a horizontal tube

수평관내 $CO_2$의 초임계 영역내 열전달에 관한 연구

  • 오후규 (부경대학교 냉동공학과) ;
  • 이동건 (부경대학교 냉동공학과 대학원) ;
  • 손창효 (부경대학교 냉동공학과 대학원)
  • Published : 2005.07.01

Abstract

The cooling heat transfer coefficient of $CO_2$(R-744) in a horizontal tube was investigated experimentally. The experiments were conducted without oil in a closed refrigerant loop which was driven by a magnetic gear pump. The main components of the refrigerant loop are a receiver, a variable-speed pump. a mass flow meter. a pre-heater and gas cooler(test section). The test section consists of a smooth, horizontal stainless steel tube of 7.75 mm inner diameter. The experiments were conducted at mass flux of 200 to $400\;kg/m^{2}s$ and the inlet cooling pressure of 7.5 MPa to 10.0 MPa. The variation of heat transfer coefficient tends to decrease as cooling pressure of $CO_2$ increases. The heat transfer coefficient with respect to mass flux increases as mass flux increases. The pressure drop of $CO_2$ in the gas cooler shows a relatively good agreement with that predicted by Blasius's correlation. The local heat transfer coefficient of $CO_2$ agrees well with the correlation by Bringer-Smith.

Keywords

References

  1. Yoon, S. H., 'Studies on the characteristics of evaporation and supercritical gas cooling heat transfer of carbon dioxide, Seoul National University, School of Mechanical and Aerospace Engineering', Thesis for the Degree of Doctor of Philosophy, 2002
  2. Yun, L., Kim, Y. C., and Kim, M. S., 'Two-phase flow patterns of $CO_2$ in a narrow rectangular channel', International Congress of Refrigeration Washington D. C, pp. 1-7, 2003
  3. Yun, B., Park, H. Y., Yoo, K. C. and Kim, Y. C., 'Air-conditioner cycle simulation using tube-by-tube method', Korean Journal of Air-Conditioning and Refrigeration Engineering, Vol. 11, No. 4, pp. 499-510, 1999
  4. Dittus, F. W. and Boelter, L. M. K., University of California, Berkeley, Publications on Engineering, Vol. 2, p. 443, 1930
  5. Petrov, N. E. and V. N. Popov., 'Heat Transfer and Resistance of Carbon Being Cooled in the Supercritical Region', Thermal Engineering, 32(3), pp. 131-134, 1985
  6. Gnielinski, V., 'New Equation for Heat and Mass Transfer in Turbulent Pipe and Channel Flow', International of Chem. Engineering, 16 : pp. 359-368, 1976
  7. Pitla, S. S., Robinson, D. M., Groll, E. A. and Ramadhyani, S., 'Heat Transfer from Supercritical Carbon Dioxide in Tube Flow: A Critical Review', 1998, HVAC&R research, Vol. 4, No. 4, pp. 281-301, 1998
  8. Bringer, R. P. and Smith, J. M., AIChE. Journal, Vol. 3, No. 1, pp. 49-55, 1957 https://doi.org/10.1002/aic.690030110