The drive towards high-work turbines has led to designs which can be compact, transonic, supersonic, counter rotating, or use a dense drive gas. These aggressive designs can lead to strong secondary flows and airfoil flow separation. In many cases the secondary and separated flows can be minimized by contouring the hub/shroud endwalls and/or modifying the airfoil stacking. In this study, three-dimensional unsteady Navier-Stokes simulations were performed to study three different endwall shapes between the first-stage vanes and rotors, as well as two different stackings for the first-stage vanes. The predicted results indicate that changing the stacking of the first-stage vanes can significantly impact endwall separation (and turbine performance) in regions where the endwall profile changes.


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    Titel :

    Effects of Endwall Geometry and Stacking on Two-Stage Supersonic Turbine Performance


    Beteiligte:
    Dorney, Daniel J. (Autor:in) / Griffin, Lisa W. (Autor:in) / Huber, Frank W. (Autor:in) / Sondak, Douglas L. (Autor:in) / Turner, Jim (Autor:in)

    Kongress:

    40th AIAA Aerospace Sciences Meeting and Exhibit ; 2002 ; Reno, NV, United States


    Erscheinungsdatum :

    2002-01-01


    Medientyp :

    Sonstige


    Format :

    Keine Angabe


    Sprache :

    Englisch




    Effects of Endwall Geometry and Stacking on Two-Stage Supersonic Turbine Performance

    Dorney, Daniel J. / Griffin, Lisa W. / Huber, Frank W. et al. | NTRS | 2002


    Effects of endwall geometry and stacking on two-stage supersonic turbine performance

    Dorney, D. / Griffin, L. / Huber, F. et al. | AIAA | 2002


    Effects of End Wall Geometry and Stacking on Supersonic Turbine Performance

    Daniel J. Dorney / Lisa W. Griffin / Frank W. Huber et al. | AIAA | 2002



    Turbine vane ceramic endwall

    HAYES, C. W. / ZABIEREK, D. | AIAA | 1975