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The Condensation Heat Transfer of Alternative Refrigerants for R-22 in Small Diameter Tubes

세관내 R-22 대체냉매의 응축열전달에 관한 연구

  • Published : 2001.02.01

Abstract

The condensation heat transfer coefficients of pure refrigerants R-22, R-134a, and a binary refrigerant mixture R-410A flowing in a small diameter tube were investigated. The experiment apparatus consists of a refrigerant loop and a water loop. The main components of the refrigerant loop consist of a variable-speed pump, a mass flowmeter, an evaporator, and a condenser(test section). The water loop consists of a variable-speed pump, an isothermal tank, and a flowmeter. The condenser is a counterflow heat exchanger with refrigerant flowing in the inner tube and water flowing in the annulus. The test section consists of smooth, horizontal copper tube of 3.38mm outer diameter and 1.77mm inner diameter. The length of test section is 1220mm. The refrigerant mass fluxes varied from 450 to 1050kg/(㎡$.$s) and the average inlet and outlet qualities were 0.05 and 0.95, respectively. The main results were summarized as follows ; in the case of single-phase flow, the heat transfer coefficients increase with increasing mass flux. The heat transfer coefficient of R-410A was higher than that of R-22 and R-134a, and the heat transfer for small diameter tubes were about 20% to 27% higher than those predicted by Gnielinski. In the case of two-phase flow, the heat transfer coefficients also increase with increasing mass flux and quality. The condensation heat transfer coefficient of R-410A was slightly higher than that of R-22 and R-134a. Most of correlations proposed in the large diameter tube showed significant deviations with experimental data except for the ranges of low quality and low mass flux.

Keywords

References

  1. Moser, K. et al, 1998, 'A New Equivalent Reynolds Number Model for Condensation in Smooth tubes,' Journal of Heat Transfer, Vol. 120
  2. 홍진우, 정진호, 김기수, 노건상, 오후규, 1999, '소구경 관내 응축 전열 특성에 관한 연구,' 대한기계학회 춘계학술대회논문집 B, KSME 99S262, pp. 581-586
  3. Ralph, L. Webb, Ming Zhang and R. Narayanamurhy, 1998, 'Condensation Heat Transfer in Small Diameter Tubes,' Proceedings of 11th IHTC, Vol. 6, pp. 403-408
  4. Gnielinski, V., 1976, 'New Equations for Heat and Mass Transfer in Turbulent Pipe and Channel Flow,' Int. Chem. Eng. Vol. 16, pp. 359-368
  5. Adams, T. M. Abdel-khlik, S. I. Jeter, S. M. and Qureshi, Z. H., 1998, 'An Experimental Investigation of Single-Phase Forced Convection in Microchannels,' Int. J. Heat and Mass Transfer, Vol. 41, No. 67, pp. 851-587 https://doi.org/10.1016/S0017-9310(97)00180-4
  6. Peng, X. F. and Peterson, G. P., 1995, 'The Effect of Thermofluid and Geometrical Parameters on Convection of Liquid Through Rectangular Microchannels,' Int. J. Heat and Mass Transfer, Vol. 38, pp. 755-758 https://doi.org/10.1016/0017-9310(95)93010-F
  7. Wijaya, H., Spatz, M. W., 1995, 'Two-Phase Flow Heat Transfer and Pressure Drop Characteristics of R-22 and R-32/125,' ASHRAE Transaction, Vol. 101, Part. 1, pp. 1020-1026
  8. Cavallini, A. and Zecchin, R., 1974, 'A Dimensionless Correlation for Heat Transfer in Forced Convection Condensation,' Proc. Fifth Int. Heat Transfer Conf., September 3, pp. 309-313
  9. Dobson, M. K., Chato, J. C., Hinde, D. K., and Wang, S. P., 1994, 'Experimental Evaluation of Internal Condensation of Refrigerants R-12 and R-134a,' ASHRAE Transaction, Vol. 100, Part 1, pp. 744-755
  10. Haraguchi, E., Koyama, H. and Fujii, S., 1994, 'Condensation of Refrigerant HCFC-22, HFC-134a HCFC-123 in a Horizontal Smooth Tubes,' Transaction JSME, Vol. 60, No. 574, pp. 2107-2116
  11. Shah, M. M., 1979, 'A General correlation for Heat Transfer During Film Condensation Inside Pipes,' International J. of Heat and Mass Transfer, Vol. 22, pp. 547-556 https://doi.org/10.1016/0017-9310(79)90058-9