Two-dimensional thermal profiles were experimentally measured downstream of a single row of film cooling holes on both an adiabatic and a matched Biot number model turbine vane. The measurements were taken as a comparison to computational simulations of the same model and flow conditions. Previously, adiabatic and overall effectiveness comparisons have been made between experimental and computational data. To improve computational models of the evolution of a film cooling jet as it propagates downstream, the thermal field above the vane, not just the footprint on the vane surface, must be analyzed. This study expands these data to include 2D thermal fields above the vane at 0, 5, and 10 hole diameters downstream of the film cooling holes. Four blowing ratios were tested, M = 0.28, 0.65, 1.11, and 2.41. In each case, the computational jets remained colder than the experimental jets because they did not diffuse into the mainstream as quickly. In addition, the computational results for the higher two blowing ratios exhibited the effects of the kidney vortex commonly studied in film cooling, but the experimental thermal fields were not dominated by this vortex. Finally, in comparing results above adiabatic and matched Biot number models, these thermal fields allow for an accurate analysis of whether or not the adiabatic wall temperature was a reasonable estimate of the driving temperature for heat transfer.
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October 2015
Research-Article
Experimental Thermal Field Measurements of Film Cooling Above the Suction Surface of a Turbine Vane
Willam R. Stewart,
Willam R. Stewart
1
Department of Mechanical Engineering,
e-mail: stewart@ge.com
The University of Texas at Austin
,204 E Dean Keeton Street Stop C2200
,Austin
, TX 78712e-mail: stewart@ge.com
1
Present address: GE Global Research
, Niskayuna, NY 12309.
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David G. Bogard
David G. Bogard
Department of Mechanical Engineering,
e-mail: dbogard@mail.utexas.edu
The University of Texas at Austin
,204 E Dean Keeton Street Stop C2200
,Austin
, TX 78712e-mail: dbogard@mail.utexas.edu
Search for other works by this author on:
Willam R. Stewart
Department of Mechanical Engineering,
e-mail: stewart@ge.com
The University of Texas at Austin
,204 E Dean Keeton Street Stop C2200
,Austin
, TX 78712e-mail: stewart@ge.com
David G. Bogard
Department of Mechanical Engineering,
e-mail: dbogard@mail.utexas.edu
The University of Texas at Austin
,204 E Dean Keeton Street Stop C2200
,Austin
, TX 78712e-mail: dbogard@mail.utexas.edu
1
Present address: GE Global Research
, Niskayuna, NY 12309.
Contributed by the Heat Transfer Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received November 29, 2014; final manuscript received January 31, 2015; published online April 28, 2015. Editor: David Wisler.
J. Eng. Gas Turbines Power. Oct 2015, 137(10): 102604 (10 pages)
Published Online: October 1, 2015
Article history
Received:
November 29, 2014
Revision Received:
January 31, 2015
Online:
April 28, 2015
Citation
Stewart, W. R., and Bogard, D. G. (October 1, 2015). "Experimental Thermal Field Measurements of Film Cooling Above the Suction Surface of a Turbine Vane." ASME. J. Eng. Gas Turbines Power. October 2015; 137(10): 102604. https://doi.org/10.1115/1.4030263
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