Experimental and numerical methods were used to investigate the aerodynamic performance of a winglet tip in a linear cascade. A flat tip and a cavity tip were studied as baseline cases. The flow patterns over the three tips were studied. For the cavity tip and the winglet tip, vortices appear in the cavity and the gutter. These vortices reduce the discharge coefficient of the tip leakage flow. The purpose of using a winglet tip is to reduce the driving pressure difference. The pressure side winglet of the winglet geometry studied in this paper has little effect in reducing the driving pressure difference. It is found that the suction side winglet reduces the driving pressure difference of the tip leakage flow near the leading edge, but increases the driving pressure difference from midchord to the trailing edge. This is also used to explain the findings and discrepancies in other studies. Compared with the flat tip, the cavity tip and the winglet tip achieve a reduction of loss. The effects of the rounding of the pressure side edge of the tips were studied to simulate the effects of deterioration. As the size of the pressure side edge radius increases, the tip leakage mass flow rate and the loss increase. The improvement of the aerodynamic performance by using a winglet remains similar when comparing with a flat tip or a cavity tip with the same pressure side radius.

References

1.
Dey'D.
,
2001
, “
Aerodynamic Tip Desensitization in Axial Flow Turbines
,” Ph.D. thesis,
Pennsylvania State University
,
University Park, PA
.
2.
Zhou
,
C.
, and
Hodson
,
H.
,
2011
, “
The Tip Leakage Flow of an Unshrouded High Pressure Turbine Blade With Tip Cooling
,”
ASME J. Turbomach.
,
133
(
4
), p.
041028
.10.1115/1.4001174
3.
Zhou
,
C.
,
Hodson
,
H.
,
Tibbott
,
I.
, and
Stokes
,
M.
,
2011
, “
The Aero-Thermal Performance of a Cooled Winglet Tip in a High Pressure Turbine Cascade
,”
ASME
Paper No. GT2011-46369. 10.1115/GT2011-46369
4.
Booth
,
T. C.
,
Dodge
P. R.
, and
Hepworth
H. K.
,
1981
, “
Rotor-Tip Leakage Part I—Basic Methodology
,” ASME Paper No. 81-GT-71.
5.
Heyes
,
F. J. G.
,
Hodson
,
H. P.
, and
Dailey
G. M.
,
1992
, “
The Effect of Blade Tip Geometry on the Tip Leakage Flow in Axial Turbine
,”
ASME J. Turbomach.
,
114
, pp.
643
651
.10.1115/1.2929188
6.
Dishart
,
P. T.
, and
Moore
,
J.
,
1990
, “
Tip Leakage Losses in a Linear Turbine Cascade
,”
ASME J. Turbomach.
,
112
, pp.
599
608
.10.1115/1.2927700
7.
Ameri
,
A. A.
,
2001
, “
Heat Transfer and Flow on the Blade Tip of a Gas Turbine Equipped With a Mean-Camberline Strip
,”
ASME J. Turbomach.
,
123
, pp.
704
708
.10.1115/1.1400114
8.
Harvey
,
N. W.
,
2004
, “
Turbine Blade Tip Design and Tip Clearance Treatment
,”
VKI Lecture Series
, January 19–23.
9.
Ameri
,
A. A.
,
Steinthorsson
,
E.
, and
Rigby
,
D. L.
,
1998
, “
Effect of Squealer Tip on Rotor Heat Transfer and Efficiency
,”
ASME J. Turbomach.
,
120
, pp.
753
759
.10.1115/1.2841786
10.
Camci
,
C.
,
Dey
,
D.
, and
Kavurmacioglu
,
L.
,
2005
, “
Aerodynamics of Tip Leakage Flow Near Partial Squealer Rims in an Axial Flow Turbine Stage
,”
ASME J. Turbomach.
,
127
, pp.
14
24
.10.1115/1.1791279
11.
Key
N.
, and
Arts
,
T.
,
2006
, “
Comparison of Turbine Tip Leakage Flow for Flat Tip and Squealer Tip Geometries at High-Speed Conditions
,”
ASME J. Turbomach.
,
128
, pp.
213
220
.10.1115/1.2162183
12.
Heyes
,
F.
, private communication.
13.
Schabowski
,
Z.
, and
Hodson
,
H.
,
2007
, “
The Reduction of Over Tip Leakage Loss in Unshrouded Axial Turbines Using Winglet and Squealers
,”
ASME
Paper No. GT2007-27623. 10.1115/GT2007-27623
14.
Liu
,
H. C.
,
Booth
,
T. C.
, and
Tall
,
W. A.
,
1979
, “
An Application of 3-D Viscous Flow Analysis to the Design of a Low-Aspect-Ratio Turbine
,” ASME Paper No. 79-GT-53.
15.
Yaras
,
M. I.
, and
Sjolander
,
S. A.
, “
Measurements of the Effects of Winglets on Tip-Leakage Losses in a Linear Turbine Cascade
,” Paper No. ISABE 91-7011.
16.
Harvey
,
N.
,
Newman
,
D.
, and
Haselbach
,
F.
,
2006
, “
An Investigation Into a Novel Turbine Rotor Winglet: Part I—Design and Model Rig Test Results
,”
ASME
Paper No. GT2006-90456. 10.1115/GT2006-90456
17.
Schabowski
,
Z.
,
Hodson
,
H.
,
Giacche
,
D.
, and
Power
,
B.
,
2010
, “
Aeromechanical Optimisation of a Winglet-Squealer Tip for an Axial Turbine
,”
ASME
Paper No. GT2010-23542. 10.1115/GT2010-23542
18.
Dey
,
D.
, and
Camci
,
C.
,
2001
, “
Aerodynamic Tip Desensitization of an Axial Turbine Rotor Using Tip Platform Extensions
,” ASME Paper No. 2001-GT-0484.
19.
Zhou
,
C.
,
Hodson
,
H.
,
Tibbott
,
I.
, and
Stokes
,
M.
,
2011
, “
Effects of Endwall Motion on the Aero-Thermal Performance of a Winglet Tip in a HP Turbine
,”
ASME
Paper No. GT2011-46373. 10.1115/GT2011-46373
20.
O'Dowd
,
D.
,
Zhang
,
Q
.
, and
He
,
L.
,
2013
, “
Aerothermal Performance of a Cooled Winglet at Engine Representative Mach and Reynolds Number
,”
ASME J. Turbomach.
,
135
(1)
, p.
011041
.10.1115/1.4006537
21.
Matsunuma
T.
,
2006
, “
Effects of Reynolds Number and Freestream Turbulence on Turbine Tip Clearance Flow
,”
ASME J. Turbomach.
,
128
, pp.
166
177
.10.1115/1.2103091
22.
Holman
,
J. P.
, and
Gajda
,
W. J. Jr.
,
1984
,
Experimental Methods for Engineers
, 4th ed.,
McGraw-Hill
,
New York
.
23.
Zhou
,
C.
, and
Hodson
,
H.
,
2012
, “
Squealer Geometry Effects on Aerothermal Performance of Tip-Leakage Flow of Cavity Tips
,”
J. Propulsion & Power
,
28
(3)
, pp.
556
567
.10.2514/1.B34254
24.
Zhou
,
C.
, and
Hodson
,
H.
,
2009
, “
Numerical Investigation of Thermal Performance of Unshrouded HP Turbine Blade Tips
,”
Int. J. Turbo Jet Engines
,
26
, pp.
277
284
.10.1515/TJJ.2009.26.4.277
25.
Moore
,
J.
, and
Tilton
,
J. S.
,
1988
, “
Tip Leakage Flow in a Linear Turbine Cascade
,”
ASME J. Turbomach.
,
110
, pp.
18
26
.10.1115/1.3262162
26.
Rains
D. A.
,
1954
, “
Tip Clearance Flows in Axial Flow Compressors and Pumps
,” Report No. 5,
Hydrodynamics and Mechanical Engineering Laboratories, California Institute of Technology
, Pasadena, CA.
27.
Tallman
,
J.
, and
Lakshminarayana
B.
,
2001
, “
Numerical Simulation of Tip Leakage Flows in Axial Flow Turbines, With Emphasis on Flow Physics: Part II—Effect of Outer Casing Relative Motion
,”
ASME J. Turbomach.
,
123
, pp.
323
333
.10.1115/1.1369113
You do not currently have access to this content.