The constant pressure heat capacity and forced convection heat transfer coefficient of water/oxygen mixtures were measured in a horizontal, smooth, electrically-heated tube. For the supercritical pressure (25 MPa) considered, flow rates (0.76–2.04 kg/min), heat fluxes (21–290 kW/m2) and temperatures (330–430°C), the flow in the 6.2 mm ID tube was fully turbulent. The fluid was distilled water and up to 9 wt % oxygen. The water/oxygen mixture and the above experimental conditions are relevant to supercritical water oxidation systems (SCWO). At subcritical temperatures the oxygen/water mixture is almost immiscible and the flow is two-phase. Just below the critical temperature, the fluid becomes single-phase. By measuring bulk and surface temperatures, for a given flow rate, heat flux and oxygen content, both the heat capacity and heat transfer coefficient for the mixture were measured. The water-oxygen system is a highly non-ideal mixture, and small amounts of oxygen significantly reduce the temperature at which maximum heat transfer occurs. Despite the multi-phase nature of the flow at temperatures well below the critical temperature (i.e., <360°C), the presence of small quantity of oxygen has little effect on the heat transfer. At supercritical temperatures where the flow is single-phase and gas-like, the presence of oxygen has little effect on the heat transfer coefficient. However, at near-critical temperatures, the addition of small amounts of oxygen results in a dramatic change in the heat transfer. Firstly, the magnitude and temperature for the peak heat transfer decrease, consistent with changes in heat capacity. Secondly, heat transfer is deteriorated at moderate heat flux, mostly but not exclusively on the top surface of the tube.

1.
Oka
,
Y.
,
Koshizuka
,
S.
,
Jevremovic
,
T.
, and
Okano
,
Y.
,
1995
, “
System Design of Direct-Cycle Supercritical Water Cooled Fast Reactors
,”
Nucl. Technol.
,
109
, pp.
1
10
.
2.
Thomason
,
T. B.
, and
Modell
,
M.
,
1984
, “
Supercritical Water Destruction of Aqueous Wastes
,”
Hazard. Waste
,
1
, pp.
453
246
.
3.
Tester, J. W., Holgate, H. R., Armellini, F. J., Webley, P. A., Killilea, W. R., Hong, G. T., and Barner, H. E., 1993, “Supercritical Water Oxidation Technology: Process Development and Fundamental Research,” Emerging Technologies in Hazardous Waste Management, D. W. Tedder and F. G. Pohland, eds., ACS Symposium Series 518, ACS, Washington, DC, pp. 35–76.
4.
Gloyna
,
E. F.
, and
Lixiang
,
L.
,
1995
, “
Supercritical Water Oxidation Research and Development Update
,”
Environ. Prog.
,
14
, pp.
182
192
.
5.
Kritzer
,
P.
, and
Dinjus
,
E.
,
2001
, “
An Assessment of Supercritical Water Oxidation (SCWO): Existing Problems, Possible Solutions and New Reactor Concepts
,”
Chem. Eng. J.
,
83
, pp.
207
214
.
6.
Deissler
,
R. G.
,
1954
, “
Heat Transfer and Fluid Friction for Fully Developed Turbulent Flow of Air and Supercritical Water With Variable Fluid Properties
,”
Trans. ASME
,
pp.
73
85
.
7.
Miropolski
,
L.
, and
Shitsman
,
M. E.
,
1957
, “
Heat Transfer to Water and Steam at Variable Specific Heat (in Near-Critical Region)
,”
Soviet Physics
,
27
(
10
), pp.
2359
2372
.
8.
Hall, W. B., 1971, “Heat Transfer Near the Critical Point,” Advances in Heat Transfer, I. F. Irvine, Jr. and J. P. Hartnett, eds., Academia Press.
9.
Jackson, J. D., and Hall, W. B., 1979, “Forced Convection Heat Transfer to Fluids at Supercritical Pressure,” Turbulent Forced Convection in Channel and Bundles, Hemisphere, New York, 12, pp. 563–599.
10.
Polyakov
,
A. F.
,
1991
, “
Heat Transfer Under Supercritical Pressures
,”
Adv. Heat Transfer
,
21
, pp.
2
51
.
11.
Bazargan, M., 2001, “Forced Convection Heat Transfer to Turbulent Flow of Supercritical Water in a Round Horizontal Tube,” Ph.D. thesis, UBC.
12.
Wagner
,
W.
, and
Pruß
,
A.
,
2002
, “
The IAPWS Formulation 1995 for the Thermodynamic Properties of Ordinary Water Substance for General and Scientific Use
,”
J. Phys. Chem. Ref. Data
,
31
, p.
387
387
.
13.
Petukhov, B. S., Polyakov, A. F., Kuleshohov, V. A., and Sheckter, Y. L., 1974, “Turbulent Flow and Heat Transfer in Horizontal Tubes With Substantial Influence of Thermo-Gravitational Forces,” Proc. 5th Int. Heat Transfer Conf., Paper No. NC4.8. ASME, New York.
14.
Japas
,
M. L.
, and
Franck
,
E. U.
,
1985
, “
High Pressure Equilibria and PVT-Data of the Water-Oxygen System Including Water-Air to 673 K and 250 MPa
,”
Ber. Bunsenges. Phys. Chem.
,
89
, pp.
1286
1274
.
15.
Saur
,
A. M.
,
Behrendt
,
F.
, and
Franck
,
E. U.
,
1993
, “
Calculation of High Pressure Counterflow Diffusion Flames Up to 3000 Bar
,”
Ber. Bunsenges. Phys. Chem.
,
97
, pp.
900
908
.
16.
Christoforakos
,
M.
, and
Franck
,
E. U.
,
1986
, “
An Equation of State for Binary Fluid Mixtures to High Temperatures an High Pressure
,”
Ber. Bunsenges. Phys. Chem.
,
90
, pp.
780
788
.
17.
Wang, S., 2001, “Properties of Supercritical Water-Oxygen Mixtures,” M.Sc. thesis, UBC.
18.
Oh
,
C. H.
,
Kochan
,
R. J.
, and
Beller
,
J. M.
,
1997
, “
Numerical Analysis and Data Comparison of a Supercritical Water Oxidation Reactor
,”
AIChE J.
,
43
, pp.
1672
1636
.
19.
Rogak, S., 2000, “Measurements of the Constant-Pressure Heat Capacity of Water-Oxygen Mixtures at Near-Critical Conditions,” Proc. Of the 13th International Conference on the Properties of Water and Steam, P. R. Tremaine, P. G. Hill, D. E. Irish, and P. V. Balakrishnan, eds., NRC Research Press, pp. 149–156.
20.
Boskovic, S., 2001, “Measurements of Heat Capacities and Heat Transfer Coefficient of Water-Oxygen Mixtures at Near Critical Conditions,” M.A.Sc. thesis, UBC.
21.
Rogak, S. N., Boskovic, S., and Faraji, D., 2002, Proc. ASME Int. Mechanical Engineering Congress & Exposition, Paper IMECE2002-34314.
22.
Swenson
,
H. S.
,
Carver
,
J. R.
, and
Kakarla
,
C. R.
,
1965
, “
Heat Transfer to Supercritical Water in Smooth-Bore Tubes
,”
ASME J. Heat Transfer
,
pp.
477
484
.
You do not currently have access to this content.