The two-phase heat transfer coefficients of pure HFC-134a condensing inside a smooth tube-in-tube heat exchanger are experimentally investigated. The test section is a 0.5 m long double tube with refrigerant flowing in the inner tube and cooling water flowing in the annulus. The inner tube is constr
Comparison of frictional pressure drop models during annular flow condensation of R600a in a horizontal tube at low mass flux and of R134a in a vertical tube at high mass flux
โ Scribed by A.S. Dalkilic; O. Agra; I. Teke; S. Wongwises
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 488 KB
- Volume
- 53
- Category
- Article
- ISSN
- 0017-9310
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โฆ Synopsis
This study compares well-known two-phase pressure drop models with the experimental results of a condensation pressure drop of (i) R600a in a 1 m long horizontal smooth copper tube with an inner diameter of 4 mm, outer diameter of 6 mm and (ii) R134a in a 0.5 m vertical smooth copper tube with an inner diameter of 8.1 mm and outer diameter of 9.52 mm. Different vapour qualities (0.45-0.9 for R600a and 0.7-0.95 for R134a), various mass fluxes (75-115 kg m ร2 s ร1 for R600a and 300-400 for R134a kg m ร2 s ร1 ) and different condensing temperatures (30-43 ยฐC for R600a and 40-50 ยฐC for R134a) were tested under annular flow conditions. The quality of the refrigerant in the test section was calculated considering the temperature and pressure obtained from the experiment. The pressure drop across the test section was directly measured with a differential pressure transducer. The most agreeable correlations of various available options were then identified according to the results of analysis during annular flow regime.
๐ SIMILAR VOLUMES
This paper presents an improved flow pattern map for predicting the heat transfer coefficients during condensation of R-134a inside a smooth horizontal tube. Experimental tests were conducted over the low-mass flux range of 75-300 kg/m 2 s, at a nominal saturation temperature of 40 ยฐC, and with the