Heat Transfer on a Film-Cooled Rotating Blade Using a Two-Equation Turbulence Model

Author:

Garg Vijay K.1

Affiliation:

1. AYT Corporation, NASA Lewis Research Center, 21000 Brookpark Road, Mail Stop 5-11, Cleveland 44135, OH, USA

Abstract

A three-dimensional Navier–Stokes code has been used to compare the heat transfer coefficient on a film-cooled, rotating turbine blade. The blade chosen is the ACE rotor with five rows containing 93 film cooling holes covering the entire span. This is the only filmcooled rotating blade over which experimental data is available for comparison. Over 2.278 million grid points are used to compute the flow over the blade including the tip clearance region, using Coakley'sq-ωturbulence model. Results are also compared with those obtained by Garg and Abhari (1997) using the zero-equation Baldwin-Lomax (B-L) model. A reasonably good comparison with the experimental data is obtained on the suction surface for both the turbulence models. At the leading edge, the B-L model yields a better comparison than theq-ωmodel. On the pressure surface, however, the comparison between the experimental data and the prediction from either turbulence model is poor. A potential reason for the discrepancy on the pressure surface could be the presence of unsteady effects due to stator-rotor interaction in the experiments which are not modeled in the present computations. Prediction using the two-equation model is in general poorer than that using the zero-equation model, while the former requires at least 40% more computational resources.

Publisher

Hindawi Limited

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Experimental study of rotation effect on film cooling over the flat wall with a single hole;Experimental Thermal and Fluid Science;2008-04

2. Heat transfer research on gas turbine airfoils at NASA GRC;International Journal of Heat and Fluid Flow;2002-04

3. Heat transfer on a film-cooled rotating blade;International Journal of Heat and Fluid Flow;2000-04

4. Heat transfer on a film-cooled blade – effect of hole physics;International Journal of Heat and Fluid Flow;1999-02

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