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Handbook of Turbomachinery Second Edition Revised - Ventech!

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23. D. Bohn, H. Funke, T. Heuer, J. Bu¨tik<strong>of</strong>er, ‘‘Numerical and Experimental<br />

Investigations <strong>of</strong> the Influence <strong>of</strong> Different Swirl Ratios on the Temperature<br />

Streak Development in a 4-stage Turbine, ASME Paper 2000-GT-250 (2000).<br />

24. K. Gundy-Burlet and D. J. Dorney, ‘‘Influence <strong>of</strong> 3D Hot Streaks on Turbine<br />

Heat Transfer,’’ ASME Paper No. 97-GT-422 (1997).<br />

25. T. Katsanis and W. D. McNally, <strong>Revised</strong> FORTRAN Program for Calculating<br />

Velocities and Streamlines on the Hub-Shroud Mid-Channel Stream Surface <strong>of</strong><br />

an Axial-Radial- or Mixed-Flow Turbomachine or Annular Duct Vol. 1, User’s<br />

Manual, Vol. II, Programmer’s Manual, NASA TN 8430,8431 (1977).<br />

26. M. E. Crawford and W. M. Kays, ‘‘STAN5—A Program for Numerical<br />

Computation <strong>of</strong> Two-Dimensional Internal and External Boundary Layer<br />

Flows,’’ NASA CR-2742 (1976).<br />

27. S. P. Harasgama, F. H. Tarada, R. Baumann, M. E. Crawford and S.<br />

Neelakantan, ‘‘Calculation <strong>of</strong> Heat Transfer to Turbine Blading Using Two-<br />

Dimensional Boundary Layer Methods,’’ ASME Paper 93-GT-79 (1993).<br />

28. O. P. Sharma, P. Nguyen, R. H. Ni, C. M. Rhie, J. A. White and A. K. Finke,<br />

‘‘Aerodynamics and Heat Transfer Analysis <strong>of</strong> a Low Aspect Ratio Turbine,’’<br />

AIAA Paper No. AIAA-87-1916 (1987).<br />

29. T. Arts and R. Heider, ‘‘Aerodynamic and Thermal Performance <strong>of</strong> a Three<br />

Dimensional Annular Transonic Nozzle Guide Vane. Part I: Experimental<br />

Investigation,’’ AIAA Paper AIAA-94-2929 (1994).<br />

30. H. Consigny and B. E. Richards, ‘‘Short Duration Measurements <strong>of</strong> Heat<br />

Transfer Rate to a Gas Turbine Rotor Blade,’’ ASME 81-GT-146 (1981).<br />

31. R. J. Volino, ‘‘A New Model for Free-Stream Turbulence Effects on<br />

Boundary Layers,’’ ASME J. <strong>Turbomachinery</strong>, 120: 613–620 (1998).<br />

32. R. P. Dring, M. F. Blair and H. D. Joslyn, ‘‘An Experimental Investigation <strong>of</strong><br />

Film Cooling on a Turbine Rotor Blade,’’ ASME J. Engineering for Power,<br />

102: 81–87 (1980).<br />

33. G. W. Lowery and R. I. Vachon, ‘‘The Effect <strong>of</strong> Turbulence on Heat Transfer<br />

From Heated Cylinders,’’ Int. J. Heat and Mass Transfer, 18: 1229–1242<br />

(1975).<br />

34. A. R. Wadia and D. A. Nealy, ‘‘Development <strong>of</strong> a Design Model for Airfoil<br />

Leading Edge Film Cooling,’’ ASME Paper 85-GT-120 (1985).<br />

35. V. J. Garg and R. E. Gaugler, ‘‘Prediction <strong>of</strong> Film Cooling on Gas Turbine<br />

Airfoils,’’ ASME Paper 94-GT-16 (1994).<br />

36. R. E. Mayle, ‘‘The Role <strong>of</strong> Laminar-Turbulent Transition in Gas Turbine<br />

Engines,’’ ASME J. <strong>Turbomachinery</strong>, 113: 509–537 (1991).<br />

37. Y. P. Dyban and V. D. Kurosh, ‘‘Heat Transfer at the Leading Edge <strong>of</strong> a<br />

Turbine Blade,’’ Heat Transfer—Soviet Research, 2(1) Jan. (1970).<br />

38. A. Turner, F. Tarada and F. Bayley, ‘‘Effects <strong>of</strong> Surface Roughness on Heat<br />

Transfer to Gas Turbine Blades,’’ AGARD-CP-390, pp. 9–1 to 9–9 (1985).<br />

39. N. Abuaf, R. S. Bunker and C. P. Lee, ‘‘Effects <strong>of</strong> Surface Roughness on Heat<br />

Transfer and Aerodynamic Performance <strong>of</strong> Turbine Airfoils,’’ ASME J.<br />

<strong>Turbomachinery</strong>, 120: 522–529 (1998).<br />

Copyright © 2003 Marcel Dekker, Inc.

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