A linear cascade experiment was conducted to investigate transonic and low supersonic flow losses of two nozzle blades for the steam turbines. In the experiment, flow incidences were changed from −34° to 35° and exit Mach numbers were varied from 0.60 to 1.15. Tests were conducted at Reynolds numbers between 7.4×105 and 1.6×106. Flow visualization techniques, such as shadowgraph, Schlieren, and surface color oil were used to document the flows. Measurements were made by using downstream traverses with Pitot probe, upstream total pressure probe, and sidewall static pressure taps. The losses were found to be rather constant at subsonic flows. At transonic and low supersonic flows, the losses increased steeply. The maximum relative increase of the losses was near 700% when the Mach numbers increased from 0.6 to 1.15. However, the maximum relative increase of the losses was only about 100% due to very large variation of incidences. It is important to note that the effect of Mach numbers on losses was much greater than that due to the very large incidences for the transonic and low supersonic flows. A frequently used loss correlation in the literature is found not suitable to predict the losses of the tested blades for the transonic and low supersonic flows. From the current experimental data and some data in the literature, a new correlation for the shock related losses is proposed for transonic and low supersonic flows of turbine cascades. Comparison is made among the existing correlation and the new correlation, as well as the data of the current two cascades and other three turbine cascades in the literature. Improved agreement with the experimental data of the five cascades is obtained by using the new correlation as compared with the prediction by using the frequently used loss correlation in the literature.

1.
Jouini
,
D. B. M.
,
Sjolander
,
S. A.
, and
Moustapha
,
S. H.
,
2001
, “
Aerodynamic Performance of A Transonic Turbine Cascade at Off-Design Conditions
,”
ASME J. Turbomach.
,
123
, pp.
510
518
.
2.
Benner
,
M. W.
,
Sjolander
,
S. A.
, and
Moustapha
,
S. H.
,
1997
, “
Influence of Leading-Edge Geometry on Profile Losses in Turbines at Off-Design Incidences: Experimental Results and Improved Correlation
,”
ASME J. Turbomach.
,
119
, pp.
193
200
.
3.
Goobie, S., Moustapha, S. H., and Sjolander, S. A., 1989, “An Experimental Investigation of the Effect of Incidence on the Two-Dimensional Performance of an Axial Turbine Cascade,” ISABE Paper No. 89-7019.
4.
Hodson, H. P., and Dominy, R. G., 1986, “The Off-Design Performance of a Low Pressure Steam Turbine Cascade,” ASME Paper No. 86-GT-188.
5.
Ainley, D. G., and Mathieson, G. C. R., 1951, “A Method of Performance Estimation for Axial Flow Turbines,” British ARC, R&M 2974.
6.
Craig
,
H. R. M.
, and
Cox
,
H. J. A.
,
1971
, “
Performance Estimate of Axial Flow Turbines
,”
Proc. Inst. Mech. Eng.
,
185
, No.
32
, pp.
407
424
.
7.
Martelli, F., and Boretti, A. A., 1987, “Transonic Profile Losses in Turbine Blades,” Institute of Mech. Engrs, C266.
8.
Chen, S., 1987, “A Loss Model for the Transonic Flow Low-Pressure Steam Turbine Blades,” Institute of Mech. Engrs. C26.
9.
Dunham
,
J.
, and
Came
,
P. M.
,
1970
, “
Improvements to the Ainley/Mathieson Method of Turbine Performance Prediction
,”
ASME J. Eng. Power
,
92
, pp.
252
256
.
10.
Kacker
,
S. C.
, and
Okapuu
,
U.
,
1982
, “
A Mean Line Prediction Method for Axial Flow Turbine Efficiency
,”
ASME J. Eng. Power
,
104
, pp.
111
119
.
11.
Chu, T. L., 1999, “Transonic Flow Losses of Two Steam Turbine Blades at Large Incidences,” M.S. thesis, Department of Mechanical Engineering, Virginia Tech.
12.
Mindock, Mike, 2001, personal communication.
13.
Kiock
,
R.
,
Lehthaus
,
F.
,
Baines
,
N. C.
, and
Sieverding
,
C. H.
,
1986
, “
The Transonic Flow Through a Plane Turbine Cascade as Measured in Four European Wind Tunnels
,”
ASME J. Eng. Gas Turbines Power
,
108
, pp.
277
284
.
14.
Mee
,
D. J.
,
Baines
,
N. C.
,
Oldfield
,
M. L. G.
, and
Dickens
,
T. E.
,
1992
, “
An Examination of the Contributions to Loss on a Transonic Blade Cascade
,”
ASME J. Turbomach.
,
114
, pp.
155
162
.
15.
Detemple-Laake, E., 1991, “Detailed Measurements of the Flow Field in a Transonic Turbine Cascade,” ASME Paper, 91-GT-29.
16.
Lakshminarayana, B., 1996, Fluid Dynamics and Heat Transfer of Turbomachinery, Wiley, New York, p. 558.
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