A Predictive Model for Condensation in Small Hydraulic Diameter Tubes Having Axial Micro-Fins

Author:

Yang C.-Y.1,Webb R. L.2

Affiliation:

1. Department of Mechanical Engineering, National Central University, Chung-Li 32054, Taiwan, Republic of China

2. Department of Mechanical Engineering, The Pennsylvania State University, University Park, PA 16802

Abstract

A semiempirical model is proposed to predict the condensation coefficient inside small hydraulic diameter extruded aluminum tubes having microgrooves. The model accounts for the effects of vapor shear and surface tension forces. Surface tension force is effective in enhancing the condensation coefficient as long as the fin tips are not flooded by condensate. This enhancement increases as mass velocity is reduced. At high mass velocity the flow is vapor shear controlled and the surface tension contribution is very small. The surface tension effect is strongly affected by the fin geometry. A smaller fin tip radius provides a higher surface tension drainage force. A large cross sectional area in the interfin region will allow the surface tension enhancement to occur at lower vapor quality. Separate models are developed for the surface tension and vapor shear controlled regimes and the models are combined in the form of an asymptotic equation. The vapor shear model is based on use of an equivalent mass velocity and the heat-momentum transfer analogy. The surface tension model is analytically based. The model is validated by predicting the authors data for two tube geometries using R-12 and R-134a, and the model predicts 95 percent of the condensation data within ±16 percent.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference15 articles.

1. Akers W. W. , DeansH. A., and CrosserO. K., 1959, “Condensation Heat Transfer Within Horizontal Tubes,” Chem. Eng. Prog. Symp. Ser., Vol. 55, No. 29, pp. 171–176.

2. Carpenter, F. G., and Colburn, A. P., 1951, “The Effect of Vapor Velocity on Condensation Inside Tubes,” Proceedings of the General Discussion of Heat Transfer, The Institute of Mechanical Engineers and the ASME, pp. 20–26.

3. Cavallini, A., and Zecchin, R., 1974, “A Dimensionless Correlation for Heat Transfer in Forced Convection Condensation,” Proceedings of the Fifth International Heat Transfer Conference, Vol. 3, ASME, NY, pp. 309–313.

4. Gregorig R. , 1954, “Film Condensation on Finely Rippled Surface with Condensation of Surface Tension,” Zeitschrift fur Angewandte Mathematik und Physik, Vol. V, pp. 36–49, (quoted in Webb (1994)).

5. Khanpara, J. C., Bergles, A. E., and Pate, M. B., 1986, “Augmentation of R-113 In-Tube Condensation with Micro-Fin Tubes,” Heat Transfer in Air Conditioning and Refrigeration Equipment, ASME, NY.

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