The aim of the present investigation was to study the effect of condensate inundation on the thermal performance of a vertical array of horizontal tubes with plain and enhanced surfaces. Refrigerant R-134a was condensed at a saturation temperature of on tube arrays with up to ten tubes at pitches of . Notably, local condensing heat transfer coefficients were measured at the midpoint of each tube, as opposed to mean values. Four commercially available copper tubes with a nominal diameter of were tested: a plain tube, a low finned tube, and two tubes, with three-dimensional (3D) enhanced surface structures. At low liquid inundation rates, the tubes with 3D enhanced surface structures significantly outperformed the low finned tube. Increasing liquid inundation deteriorated the thermal performance of the 3D enhanced tubes, whereas it had nearly no affect on the low finned tube, resulting in a higher heat transfer coefficients for the low finned tube at high liquid film Reynolds numbers. All the tests were performed with minimal vapor shear.
Skip Nav Destination
e-mail: john.thome@epfl.ch
Article navigation
Research Papers
Film Condensation of R-134a on Tube Arrays With Plain and Enhanced Surfaces: Part I—Experimental Heat Transfer Coefficients
D. Gstoehl,
D. Gstoehl
Laboratory of Heat and Mass Transfer,
Faculty of Engineering Sciences and Techniques
, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland
Search for other works by this author on:
J. R. Thome
J. R. Thome
Laboratory of Heat and Mass Transfer,
e-mail: john.thome@epfl.ch
Faculty of Engineering Sciences and Techniques
, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland
Search for other works by this author on:
D. Gstoehl
Laboratory of Heat and Mass Transfer,
Faculty of Engineering Sciences and Techniques
, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland
J. R. Thome
Laboratory of Heat and Mass Transfer,
Faculty of Engineering Sciences and Techniques
, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerlande-mail: john.thome@epfl.ch
J. Heat Transfer. Jan 2006, 128(1): 21-32 (12 pages)
Published Online: July 12, 2005
Article history
Received:
November 5, 2004
Revised:
July 12, 2005
Connected Content
A companion article has been published:
Film Condensation of R-134a on Tube Arrays With Plain and Enhanced Surfaces: Part II—Empirical Prediction of Inundation Effects
Citation
Gstoehl, D., and Thome, J. R. (July 12, 2005). "Film Condensation of R-134a on Tube Arrays With Plain and Enhanced Surfaces: Part I—Experimental Heat Transfer Coefficients." ASME. J. Heat Transfer. January 2006; 128(1): 21–32. https://doi.org/10.1115/1.2130400
Download citation file:
Get Email Alerts
Cited By
Annulus-side flow boiling and visualization of a three-dimensionally enhanced tube
J. Heat Mass Transfer
Related Articles
Film Condensation of R-134a on Tube Arrays With Plain and Enhanced Surfaces: Part II—Empirical Prediction of Inundation Effects
J. Heat Transfer (January,2006)
Experimental Study of Electrohydrodynamic Induction Pumping of a
Dielectric Micro Liquid Film in External Horizontal Condensation Process
J. Heat Transfer (December,2003)
Measurement of Condensation Heat Transfer Coefficients at Near-Critical Pressures in Refrigerant Blends
J. Heat Transfer (August,2007)
Effect of Fin Geometry on Condensation of R407C in a Staggered Bundle of Horizontal Finned Tubes
J. Heat Transfer (August,2003)
Related Chapters
Liquid Cooled Systems
Thermal Management of Telecommunications Equipment
Thermal Design Guide of Liquid Cooled Systems
Thermal Design of Liquid Cooled Microelectronic Equipment
Liquid Cooled Systems
Thermal Management of Telecommunication Equipment, Second Edition