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Handbook of Turbomachinery Second Edition Revised - Ventech!

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24. R. H. Ni, ‘‘A Multiple Grid Scheme for Solving the Euler Equations,’’ AIAA J.<br />

20(11): 1565–1571, Nov. (1982).<br />

25. C. Ha, ‘‘A Navier–Stokes Analysis <strong>of</strong> Three Dimensional Turbulent Flows<br />

Inside Turbine Blade Rows,’’ ASME Paper 83-GT-40 (1983).<br />

26. R. C. Kingcombe, S. P. Harasgama, Leversuch, and E. T. Wedlake,<br />

Aerodynamic and Heat Transfer Measurements on Blading for a High Rim<br />

Speed Transonic Turbine,’’ ASME Paper 89-GT-228 (1989).<br />

27. N. J. Seyb, ‘‘The Role <strong>of</strong> Boundary Layers in Axial Flow <strong>Turbomachinery</strong> and<br />

the Prediction <strong>of</strong> Their Effects,’’ AGARD-AG-164, pp. 241–259 (1972).<br />

28. K. K. Chen and N. A. Thyson, ‘‘Extension <strong>of</strong> Emmon’s Spot Theory to Flows<br />

on Blunt Bodies,’’ AIAA J. 9(5): 821–825 (1971).<br />

29. R. J. Boyle, ‘‘Navier–Stokes Analysis <strong>of</strong> Turbine Blade Heat Transfer,’’ ASME<br />

90-GT-42 (1990).<br />

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

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

31. R. J. Boyle and Jackson, ‘‘Heat Transfer Predictions for Two Turbine Nozzle<br />

Geometries at High Reynolds and Mach Numbers,’’ NASA TM 106956 (1995).<br />

32. B. S. Baldwin and H. Lomax, ‘‘Thin Layer Approximation and Algebraic<br />

Model for Separated Turbine Flows,’’ AIAA Paper AIAA-78-257 (1978).<br />

33. R. V. Chima, W. J. Giel and R. J. Boyle, ‘‘An Algebraic Turbulence Model for<br />

Three Dimensional Viscous Flows,’’ AIAA Paper 93-0083 (NASA TM-105931)<br />

(1993).<br />

34. T. Cebeci and A. M. O. Smith, Analysis <strong>of</strong> Turbulent Boundary Layers,<br />

Academic Press, New York (1974).<br />

35. R. V. Chima, ‘‘Explicit Multi-Grid Algorithm for Quasi Three Dimensional<br />

Flows in <strong>Turbomachinery</strong>,’’ AIAA J. Propulsion and Power, 3(5): 397–405<br />

(1987).<br />

36. R. W. Ainsworth, D. L. Shultz, M. R. D. Davies, C. J. P. Forth, M. A.<br />

Hilditch, M. L. G. Oldfield, and A. G. Sheard, ‘‘A Transient Flow Facility for<br />

the Study <strong>of</strong> Therm<strong>of</strong>luid-Dynamics under Engine Representative Conditions,’’<br />

ASME 88-GT-144 (1988).<br />

37. M. G. Dunn, International Gas Turbine Institute Scholar Lecture, ‘‘Convective<br />

Heat Transfer and Aerodynamics in Axial Flow Turbines,’’ ASME 2001-GT-<br />

0506 (2001).<br />

38. G. R. Guenette, A. H. Epstein, M. B. Giles, R. Hames, R. J. G. Norton, ‘‘Fully<br />

Scaled Turbine Rotor Heat Transfer Measurements,’’ ASME J. <strong>Turbomachinery</strong>,<br />

111: 1, Jan. (1989).<br />

39. M. G. Dunn and C. W. Haldeman, Jr., ‘‘High Accuracy Turbine Performance<br />

Measurements in Short Duration Facilities,’’ ASME J. <strong>Turbomachinery</strong>, 120:<br />

1–9, Jan. (1998).<br />

40. D. L. Shultz and T. V. Jones, ‘‘Heat Transfer Measurements in Short Duration<br />

Hypersonic Facilities,’’ AGARDograph, No. 165 (1973).<br />

41. R. S. Abhari, Guenette, A. H. Epstein, and M. B. Giles, ‘‘Comparison <strong>of</strong> Time-<br />

Resolved Turbine Rotor Blade Heat Transfer Measurements and Numerical<br />

Calculations,’’ ASME 91-GT-268 (1991).<br />

Copyright © 2003 Marcel Dekker, Inc.

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