Condensation Heat Transfer and Pressure Drop of R-134a in the Oblong Shell and Plate Heat Exchanger

  • Park Jae-Hong (Department of Refrigeration and Air-Conditioning Engineering, Pukyong University) ;
  • Kim Young-Soo (College of Engineering, School of Mechanical Engineering, Pukyong University)
  • Published : 2004.09.01

Abstract

Condensation heat transfer experiments were conducted with a oblong shell and plate heat exchanger without oil in a refrigerant loop using R-134a. An experimental refrigerant loop has been developed to measure the condensation heat transfer coefficient $h_r$ and frictional pressure drop ${\Delta}p_f$ of R-134a in a vertical oblong shell and plate heat exchanger. Four vertical counter flow channels were formed in the oblong shell and plate heat exchanger by four plates having a corrugated sinusoid shape of a $45^{\circ}$ chevron angle. The effects of the refrigerant mass flux, average heat flux, refrigerant saturation temperature and vapor quality were explored in detail. Similar to the case of a plate heat exchanger, even at a very low Reynolds number, the flow in the oblong shell and plate heat exchanger remains turbulent. The results indicate that the condensation heat transfer coefficients and pressure drops increase with the vapor quality. A rise in the refrigerant mass flux causes an increase in the $h_r\;and\;{\Delta}p_f$. Also, a rise in the average heat flux causes an increase in the $h_r$. But the effect of the average heat flux does not show significant effect on the ${\Delta}p_f$. On the other hand, at a higher saturation temperature, both the $h_r\;and\;{\Delta}p_f$. found to be lower. Based on the present data, the empirical correlations are provided in terms of the Nusselt number and friction factor.

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References

  1. Kerner, J., Sjogren, S. and Svensson, L., 1987, Where plate exchangers offer advantages over shell-and-tube, Power, Vol. 131, pp.53-58
  2. Williams, B., 1996, Heat transfer savings on a plate, Heating and Air Conditioning Journal, Apr., pp.29-31
  3. Shah, R. K. and Wanniarachchi, A. S., 1992, Plate heat exchanger design theory in industry heat exchanger, in: J. M. Buchlin (ed.), Lecture Series, No.1991-04, Von Karman Institute for Fluid Dynamics, Belgium
  4. Farrell, P., Wert, K. and Webb, R., 1991, Heat transfer and friction characteristics of turbulent radiator tubes, SAE Technical Paper series, No. 910197
  5. Collier, J, G., 1982, Convective boiling and condensation, 2nd ed., McGraw-Hill Int. Book Company, pp. 32, 90-93
  6. Shah, R. K. and Focke, W. W., 1988, Plate heat exchangers and their design theory, in: Shah, R. K., Subbarao, E. C., Mashelkar, R. A. (eds.), Heat Transfer Equipment Design, Hemisphere, Washington, DC, pp.227-254
  7. Kline, S. J. and McClintock, F. A., 1953, Describing uncertainties in single-sample experiments, Mechanical Engineering, Vol. 75, No.1, pp. 3-12
  8. Yan, Y.-Y., Lio, H.-C. and Lin, T.-F., 1999, Condensation heat transfer and pressure drop of refrigerant R-134a in a plate heat exchanger, Int. J. Heat and Mass Transfer 42, pp. 993-1006
  9. Akers, W. W., Dean, H. A. and Crosser, O., 1958, Condensation heat transfer within horizontal tubes, Chem. Eng. Frog. 54, pp.89-90.