Two-equation turbulence models for prediction of heat transfer on a transonic turbine blade |
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Authors: | Vijay K. Garg Ali A. Ameri |
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Affiliation: | AYT Research Corporation, NASA Glenn Research Center, Mail Stop 5-11, 21000 Brook Park Road, Cleveland, OH 44135, USA |
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Abstract: | Two versions of the two-equation k–ω model and a shear stress transport (SST) model are used in a three-dimensional, multi-block, Navier–Stokes code to compare the detailed heat transfer measurements on a transonic turbine blade. It is found that the SST model resolves the passage vortex better on the suction side of the blade, thus yielding a better comparison with the experimental data than either of the k–ω models. However, the comparison is still deficient on the suction side of the blade. Use of the SST model does require the computation of distance from a wall, which for a multi-block grid, such as in the present case, can be complicated. However, a relatively easy fix for this problem was devised. Also addressed are issues such as (1) computation of the production term in the turbulence equations for aerodynamic applications, and (2) the relation between the computational and experimental values for the turbulence length scale, and its influence on the passage vortex on the suction side of the turbine blade. |
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Keywords: | Turbulence modeling Heat transfer Turbine blade Turbulence length scale Turbulence production |
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