New experimental data are reported for forced-convection condensation of ethylene glycol on a set of nine single, copper, integral-fin tubes. The first set of five tubes had fin height and thickness of 1.6 and 0.25mm, respectively, with fin spacings of 0.25, 0.5, 1.0, 1.5, and 2.0mm. The second set of four tubes had fin spacing and thickness of 1.0 and 0.5mm, respectively, and fin heights of 0.5, 0.9, 1.3, and 1.6mm. The fins were rectangular in cross section. All tubes had a fin root diameter of 12.7mm. A plain tube of outside diameter 12.7mm was also tested. The tests, which were performed at a near constant pressure of 15kPa, covered vapor velocities between 10 and 22ms and a wide range of heat fluxes. The best performing tube was that with fin spacing, height, and thickness of 0.5, 1.6, and 0.25mm, respectively, which had an enhancement ratio (compared to the plain tube at the same vapor-side temperature difference and vapor velocity) of 2.5 at the lowest vapor velocity tested, increasing to 2.7 at the highest. For all but two of the tubes, the effect of vapor velocity on the heat-transfer coefficient of the finned tubes was less than on the plain tube, leading to a decrease in enhancement ratio with increasing vapor velocity. For two of the tubes, however, the enhancement ratio increased with increasing vapor velocity, which is the opposite trend to that found in most earlier experimental studies. This effect was thought to be due to the slight reduction in condensate flooding between the fins of these two tubes because of vapor shear.

1.
Marto
,
P. J.
, 1988, “
An Evaluation of Film Condensation on Horizontal Integral Fin Tubes
,”
ASME J. Heat Transfer
0022-1481,
110
, pp.
1287
1305
.
2.
Briggs
,
A.
, and
Rose
,
J. W.
, 1999, “
An Evaluation of Models for Condensation Heat Transfer on Low-Finned Tubes
,”
J. Enhanced Heat Transfer
1065-5131,
6
, pp.
51
60
.
3.
Rose
,
J. W.
, 1988, “
Fundamentals of Condensation Heat Transfer: Laminar Film Condensation
,”
JSME Int. J., Ser. II
0914-8817,
31
, pp.
357
375
.
4.
Michael
,
A. G.
,
Marto
,
P. J.
,
Wanniarachchi
,
A. S.
, and
Rose
,
J. W.
, 1989, “
Effect of Vapor Velocity During Condensation on Horizontal Smooth and Finned Tubes
,”
Proc. ASME Winter Annual Meeting, San Francisco
,
ASME
, New York, ASME Paper No. HTD-114, pp.
1
10
.
5.
Briggs
,
A.
,
Wen
,
X. L.
, and
Rose
,
J. W.
, 1992, “
Accurate Heat-Transfer Measurements for Condensation on Horizontal Integral-Fin Tubes
,”
ASME J. Heat Transfer
0022-1481,
114
, pp.
719
726
.
6.
Bella
,
A.
,
Cavallini
,
A.
,
Longo
,
G. A.
, and
Rossetto
,
L.
, 1993, “
Pure Vapor Condensation of Refrigerants 11 and 113 on a Horizontal Integral-Fin Tube at High Vapor Velocity
,”
J. Enhanced Heat Transfer
1065-5131,
1
, pp.
77
86
.
7.
Cavallini
,
A.
,
Doretti
,
L.
,
Longo
,
G. A.
, and
Rossetto
,
L.
, 1994, “
Experimental Investigation of Condensate Flow Patterns on Enhanced Surfaces
,”
Proc. CFC’s, The Day After, IIR International Conference, Padua
, pp.
627
634
.
8.
Namasivayam
,
S.
, and
Briggs
,
A.
, 2004, “
Effect of Vapor Velocity on Condensation of Atmospheric Pressure Steam on Integral-Fin Tubes
,”
Appl. Therm. Eng.
1359-4311,
24
, pp.
1353
1364
.
9.
Cavallini
,
A.
,
Doretti
,
L.
,
Longo
,
G. A.
, and
Rossetto
,
L.
, 1996, “
A New Model for Forced-Convection Condensation on Integral-Fin Tubes
,”
ASME J. Heat Transfer
0022-1481,
118
, pp.
689
693
.
10.
Briggs
,
A.
, and
Rose
,
J. W.
, 1994, “
Effect of ‘Fin Efficiency’ on a Model for Condensation Heat Transfer on a Horizontal Integral-Fin Tube
,”
Int. J. Heat Mass Transfer
0017-9310,
37
(Suppl. 1), pp.
457
463
.
11.
Sieder
,
E. N.
, and
Tate
,
G. E.
, 1936, “
Heat Transfer and Pressure Drop of Liquids in Tubes
,”
Ind. Eng. Chem.
0019-7866,
28
, pp.
1429
1435
.
12.
Shekriladze
,
I. G.
, and
Gomelauri
,
V. I.
, 1966, “
Theoretical Study of Laminar Film Condensation of Flowing Vapor
,”
Int. J. Heat Mass Transfer
0017-9310,
9
, pp.
581
591
.
13.
Moffat
,
R. J.
, 1988, “
Describing the Uncertainties in Experimental Results
,”
Exp. Therm. Fluid Sci.
0894-1777,
1
, pp.
3
17
.
14.
Briggs
,
A.
, 1991, “
Forced-Convection Condensation on Horizontal, Integral-Fin Tubes
,” Ph.D. Thesis, University of London.
15.
Nusselt
,
W.
, 1916, “
Die Oblerflachenkondensation des Wasserdampfes
,”
Z. Vereines Deutsch. Ing.
,
60
, pp.
541
546
, 569–575.
16.
Memory
,
S.
, and
Rose
,
J. W.
, 1986, “
Filmwise Condensation of Ethylene Glycol on a Horizontal Tube at High Vapor Velocity
,”
Proc. of 8th Int Heat Transfer Conf., San Francisco
, Vol.
4
, pp.
1607
1612
.
17.
Honda
,
H.
,
Nozu
,
S.
, and
Mitsumori
,
K.
, 1983, “
Augmentation of Condensation on Finned Tubes by Attaching a Porous Drainage Plate
,”
Proc. ASME-JSME Thermal Engineering Joint Conf.
, Vol.
3
, p.
289
.
18.
Briggs
,
A.
, and
Sabaratnam
,
S.
, 2005, “
Condensation From Pure Steam and Steam-Air Mixtures on Integral-Fin Tubes in a Bank
,”
ASME J. Heat Transfer
0022-1481,
127
, pp.
571
580
.
You do not currently have access to this content.