The focus of the study presented here was to investigate the interaction between the blade and downstream vane of a stage-and-one-half transonic turbine via computation fluid dynamic (CFD) analysis and experimental data. A Reynolds-averaged Navier–Stokes (RANS) flow solver with the two-equation Wilcox 1998 k–ω turbulence model was used as the numerical analysis tool for comparison with all of the experiments conducted. The rigor and fidelity of both the experimental tests and numerical analysis methods were built through two- and three-dimensional steady-state comparisons, leading to three-dimensional time-accurate comparisons. This was accomplished by first testing the midspan and quarter-tip two-dimensional geometries of the blade in a linear transonic cascade. The effects of varying the incidence angle and pressure ratio on the pressure distribution were captured both numerically and experimentally. This was used during the stage-and-one-half post-test analysis to confirm that the target corrected speed and pressure ratio were achieved. Then, in a full annulus facility, the first vane itself was tested in order to characterize the flowfield exiting the vane that would be provided to the blade row during the rotating experiments. Finally, the full stage-and-one-half transonic turbine was tested in the full annulus cascade with a data resolution not seen in any studies to date. A rigorous convergence study was conducted in order to sufficiently model the flow physics of the transonic turbine. The surface pressure traces and the discrete Fourier transforms (DFT) thereof were compared to the numerical analysis. Shock trajectories were tracked through the use of two-point space–time correlation coefficients. Very good agreement was seen when comparing the numerical analysis to the experimental data. The unsteady interaction between the blade and downstream vane was well captured in the numerical analysis.
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June 2016
Research-Article
Unsteady Aerodynamic Interaction in a Closely Coupled Turbine Consistent With Contrarotation
Richard J. Anthony,
Richard J. Anthony
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
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Andrew T. Lethander,
Andrew T. Lethander
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
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John P. Clark
John P. Clark
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
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Michael K. Ooten
Richard J. Anthony
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
Andrew T. Lethander
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
John P. Clark
Air Force Research Laboratory,
Wright-Patterson AFB, OH 45433
Wright-Patterson AFB, OH 45433
1Corresponding author.
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received November 13, 2015; final manuscript received November 30, 2015; published online February 9, 2016. Editor: Kenneth C. Hall. This material is declared a work of the U.S. Government and is not subject to copyright protection in the United States. Approved for public release; distribution is unlimited.
J. Turbomach. Jun 2016, 138(6): 061004 (13 pages)
Published Online: February 9, 2016
Article history
Received:
November 13, 2015
Revised:
November 30, 2015
Citation
Ooten, M. K., Anthony, R. J., Lethander, A. T., and Clark, J. P. (February 9, 2016). "Unsteady Aerodynamic Interaction in a Closely Coupled Turbine Consistent With Contrarotation." ASME. J. Turbomach. June 2016; 138(6): 061004. https://doi.org/10.1115/1.4032284
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