Comparison of computational and experimental results for a transonic variable-speed power-turbine blade operating with low inlet turbulence levels
Author(s) -
David T. Booth,
Ashlie B. Flegel
Publication year - 2015
Publication title -
51st aiaa/sae/asee joint propulsion conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2015-3928
Subject(s) - transonic , turbulence , inlet , computational fluid dynamics , blade (archaeology) , turbine , variable (mathematics) , power (physics) , mechanics , turbine blade , marine engineering , aerospace engineering , aerodynamics , computer science , mechanical engineering , physics , engineering , mathematics , thermodynamics , mathematical analysis
A computational assessment of the aerodynamic performance of the midspan section of a variable-speed power-turbine blade is described. The computation comprises a periodic single blade that represents the 2-D Midspan section VSPT blade that was tested in the NASA Glenn Research Center Transonic Turbine Blade Cascade Facility. A commercial, off-the-shelf (COTS) software package, Pointwise and CFD++, was used for the grid generation and RANS and URANS computations. The CFD code, which offers flexibility in terms of turbulence and transition modeling options, was assessed in terms of blade loading, loss, and turning against test data from the transonic tunnel. Simulations were assessed at positive and negative incidence angles that represent the turbine cruise and take-off design conditions. The results indicate that the secondary flow induced at the positive incidence cruise condition results in a highly loaded case and transitional flow on the blade is observed. The negative incidence take-off condition is unloaded and the flow is very two-dimensional. The computational results demonstrate the predictive capability of the gridding technique and COTS software for a linear transonic turbine blade cascade with large incidence angle variation.
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