A Comparison of Cylindrical and Fan-Shaped Film-Cooling Holes on a Vane Endwall at Low and High Freestream Turbulence Levels

Author:

Colban W.1,Thole K. A.2,Haendler M.3

Affiliation:

1. Combustion Research Facility, Sandia National Laboratories, Livermore, CA 94551-0969

2. Department of Mechanical and Nuclear Engineering, The Pennsylvania State University, University Park, PA 16802-1412

3. Siemens Power Generation, Muelheim a. d., Ruhr, Germany

Abstract

Fan-shaped film-cooling holes have been shown to provide superior cooling performance to cylindrical holes along flat plates and turbine airfoils over a large range of different conditions. Benefits of fan-shaped holes include less required cooling air for the same performance, increased part lifetime, and fewer required holes. The major drawback, however, is increased manufacturing cost and manufacturing difficulty, particularly for the vane platform region. To this point, there have only been extremely limited comparisons between cylindrical and shaped holes on a turbine endwall at either low or high freestream turbulence conditions. This study presents film-cooling effectiveness measurements on an endwall surface in a large-scale, low-speed, two-passage, linear vane cascade. Results showed that film-cooling effectiveness decreased with increasing blowing rate for the cylindrical holes, indicating jet liftoff. However, the fan-shaped passage showed increased film-cooling effectiveness with increasing blowing ratio. Overall, fan-shaped holes increased film-cooling effectiveness by an average of 75% over cylindrical holes for constant cooling flow.

Publisher

ASME International

Subject

Mechanical Engineering

Reference29 articles.

1. A Review of Shaped Hole Turbine Film-Cooling Technology;Bunker;ASME J. Heat Transfer

2. Effects of Hole Geometry and Density on Three-Dimensional Film Cooling;Goldstein;Int. J. Heat Mass Transfer

3. Film Cooling;Goldstein;Adv. Heat Transfer

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