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Handbook of Turbomachinery Second Edition Revised - Ventech!

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Cooling in <strong>Turbomachinery</strong> (T. Arts, ed.), Lecture Series 1986–06, von Karman<br />

Institute for Fluid Dynamics, Rhode-Saint-Genese, Belgium, 1986.<br />

8. M. E. Crawford, ‘‘Simulation Codes for the Calculation <strong>of</strong> Heat Transfer to<br />

Convectively Cooled Turbine Blades,’’ 130 pp, a set <strong>of</strong> four lectures in<br />

Convective Heat Transfer and Film Cooling in <strong>Turbomachinery</strong>, T. Artz Ed.<br />

Lecture Series 1986–06, Von Karman Institute for Fluid Dynamics, Rhode-<br />

Saint-Genese, Belgium, 1986.<br />

9. H. W. Emmons, and A. E. Bryson, ‘‘The Laminar–Turbulent Transition in a<br />

Boundary Layer Part,’’ J. Aeo. Sci., 18: 490–498 (1951).<br />

10. F. M. White, Viscous Fluid Flow, McGraw Hill, New York (1974).<br />

11. W. M. Kays and M. E. Crawford, Convective Heat Transfer, McGraw Hill,<br />

New York (1980).<br />

12. J. P. Clark, J. E. LaGraff, P. J. Magari, and T. V. Jones, ‘‘Measurement <strong>of</strong><br />

Turbulent Spots and Intermittency Modeling at Gas Turbine Conditions,’’<br />

Presented at the 80th Symposium <strong>of</strong> the Propulsion and Energetics Panel Heat<br />

Transfer and Cooling in Gas Turbines, Antalya, Turkey, October 12–16, 1992.<br />

13. L. S. Langston, M. L. Nice, and R. M. Hooper, J. <strong>of</strong> Eng. for Power (1977).<br />

14. D. J. Doorly and M. J. Oldfield, ‘‘Simulation <strong>of</strong> the Effects <strong>of</strong> Shock Wave<br />

Passing on a Turbine Rotor Blade,’’ International J. <strong>of</strong> Eng. for Gas Turbines<br />

and Power, 107: 998–1006 (1985).<br />

15. D. J. Dorney, D. E. Ashpis, D. E. Halstead, and D. C. Wisler, ‘‘Study <strong>of</strong><br />

Boundary Layer Development in a Two Stage Low Pressure Turbine,’’ NASA/<br />

TM-1999-208913 (1999).<br />

16. M. F. Blair, ‘‘An Experimental Study <strong>of</strong> Heat Transfer in a Large Scale Turbine<br />

Rotor Passage,’’ ASME Paper 92-GT-195 (1992).<br />

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

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

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

18. W. Haas and B. Shoenung, ‘‘Erweiterte Version des Filmkuehlmodells im<br />

Grenzschichtverfahren GRAFTUS/R zur erfassung von Dichteunterschieden<br />

bei Filmkuelstroemungen,’’ Institut fuer Hydromechanik TH Karlssruhe Nr. 662<br />

(1988).<br />

19. F. Tarada, ‘‘Prediction <strong>of</strong> Rough Wall Boundary Layers Using a Low<br />

Reynolds Number k-epsilon Model,’’ Intl. J. <strong>of</strong> Heat and Fluid Flow. 4: 331–345<br />

(1990).<br />

20. C. K. G. Lam and K. Bremhorst, ‘‘A Modified Form <strong>of</strong> the k-epsilon Model<br />

for Predicting Wall Turbulence,’’ Trans. ASME J. <strong>of</strong> Fluid Eng., 103: 456–460<br />

(1981).<br />

21. K. Y. Chen, ‘‘Predictions <strong>of</strong> Channel and Boundary Layer Flows with a Low<br />

Reynolds Number Turbulence Model,’’ AIAA J., 20: 33–38 (1982).<br />

22. J. D. Denton, ‘‘Extension <strong>of</strong> the Finite Volume Time Marching Method to<br />

Three Dimensions,’’ Von Karman Institute Lecture Series Transonic Flows in<br />

<strong>Turbomachinery</strong> (1976).<br />

23. M. M. Rai, ‘‘Navier–Stokes Simulations <strong>of</strong> Rotor-Stator Interactions Using<br />

Patched and Overlaid Grids,’’ AIAA Paper 85–1519 (1985).<br />

Copyright © 2003 Marcel Dekker, Inc.

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