A numerical study has been performed to investigate the effect of tip geometry on the tip leakage flow and heat transfer characteristics in unshrouded axial flow turbines. Baseline flat tip geometry and squealer type geometries namely double squealer or cavity and suction side squealer were considered. The performances of the squealer geometries, in terms of the leakage mass flow and heat transfer to the tip, were compared with the flat tip at two different tip clearance gaps. The computations were performed using a single blade with periodic boundary conditions imposed along the boundaries in the pitchwise direction. Turbulence was modelled using three different models namely standard k-ε, low Re k-ω and SST k-ω, in order to assess the capability of the models in correctly predicting the blade heat transfer. The heat transfer and static pressure distributions obtained using the SST k-ω model was found to be in close agreement with the experimental data. It was observed that compared to the other two geometries considered, the cavity tip is advantageous both from the aerodynamic and from the heat transfer perspectives by providing a decrease in the amount of leakage, and hence losses, and average heat transfer to the tip. In general, for a given geometry, the leakage mass flow and the heat transfer to the tip increased with increase in tip clearance gap. Part II of this paper examines the effect of relative casing motion on the flow and heat transfer characteristics of tip leakage flow. In Part III of this paper the effect of coolant injection on the flow and heat transfer characteristics of tip leakage flow is presented.
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ASME Turbo Expo 2007: Power for Land, Sea, and Air
May 14–17, 2007
Montreal, Canada
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
0-7918-4793-4
PROCEEDINGS PAPER
Aero-Thermal Investigations of Tip Leakage Flow In Axial Flow Turbines: Part I — Effect of Tip Geometry and Tip Clearance Gap Available to Purchase
S. K. Krishnababu,
S. K. Krishnababu
University of Cambridge, Cambridge, UK
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W. N. Dawes,
W. N. Dawes
University of Cambridge, Cambridge, UK
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H. P. Hodson,
H. P. Hodson
University of Cambridge, Cambridge, UK
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J. Hannis,
J. Hannis
Siemens Industrial Turbomachinery, Ltd., Lincoln, Lincolnshire, UK
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C. Whitney
C. Whitney
Alstom Power Technology Centre, Leicester, UK
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S. K. Krishnababu
University of Cambridge, Cambridge, UK
P. J. Newton
University of Bath, Bath, UK
W. N. Dawes
University of Cambridge, Cambridge, UK
G. D. Lock
University of Bath, Bath, UK
H. P. Hodson
University of Cambridge, Cambridge, UK
J. Hannis
Siemens Industrial Turbomachinery, Ltd., Lincoln, Lincolnshire, UK
C. Whitney
Alstom Power Technology Centre, Leicester, UK
Paper No:
GT2007-27954, pp. 727-738; 12 pages
Published Online:
March 10, 2009
Citation
Krishnababu, SK, Newton, PJ, Dawes, WN, Lock, GD, Hodson, HP, Hannis, J, & Whitney, C. "Aero-Thermal Investigations of Tip Leakage Flow In Axial Flow Turbines: Part I — Effect of Tip Geometry and Tip Clearance Gap." Proceedings of the ASME Turbo Expo 2007: Power for Land, Sea, and Air. Volume 4: Turbo Expo 2007, Parts A and B. Montreal, Canada. May 14–17, 2007. pp. 727-738. ASME. https://doi.org/10.1115/GT2007-27954
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