The experimental and numerical heat transfer results in a trapezoidal duct with two staggered rows of inclined impingement jets are presented. The influence of changes in the jet bore geometry on the wall heat transfer is examined. The goal of this project is to minimize the thermal load in an internal gas turbine blade channel and to provide sufficient cooling for local hot spots. The dimensionless pitch is varied between − 6. For , cylindrical and conically narrowing bores with a cross section reduction of 25% and 50%, respectively, are investigated. The studies are conducted at . Experimental results are obtained using a transient thermochromic liquid crystal technique. The numerical simulations are performed solving the RANS equations with FLUENT using the low- k- -SST turbulence model. The results show that for a greater pitch, the decreasing interaction between the jets leads to diminished local wall heat transfer. The area averaged Nusselt numbers decrease by up to 15% for , and up to 30% for , respectively, if compared to the baseline pitch of . The conical bore design accelerates the jets, thus increasing the area-averaged heat transfer for identical mass-flow by up to 15% and 30% for the moderately and strongly narrowing jets, respectively. A dependency of the displacement between the maximum and the geometric stagnation point from the jet shear layer is shown.
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March 2013
Research-Article
Heat Transfer in an Oblique Jet Impingement Configuration With Varying Jet Geometries
Simon Schueren,
Simon Schueren
1
1Address all correspondence to this author.
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Jens von Wolfersdorf,
Jens von Wolfersdorf
Institute of Aerospace Thermodynamics (ITLR),
Pfaffenwaldring 31,
University of Stuttgart
,Pfaffenwaldring 31,
D-70569 Stuttgart
, Germany
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Shailendra Naik
Shailendra Naik
Alstom Power,
Brown Boveri Strasse 7,
Brown Boveri Strasse 7,
CH-5401 Baden
, Switzerland
Search for other works by this author on:
Simon Schueren
Jens von Wolfersdorf
Institute of Aerospace Thermodynamics (ITLR),
Pfaffenwaldring 31,
University of Stuttgart
,Pfaffenwaldring 31,
D-70569 Stuttgart
, Germany
Shailendra Naik
Alstom Power,
Brown Boveri Strasse 7,
Brown Boveri Strasse 7,
CH-5401 Baden
, Switzerland
1Address all correspondence to this author.
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received September 21, 2011; final manuscript received October 28, 2011; published online November 1, 2012. Editor: David Wisler.
J. Turbomach. Mar 2013, 135(2): 021010 (10 pages)
Published Online: November 1, 2012
Article history
Received:
September 21, 2011
Revision Received:
October 28, 2011
Citation
Schueren, S., Hoefler, F., Wolfersdorf, J. V., and Naik, S. (November 1, 2012). "Heat Transfer in an Oblique Jet Impingement Configuration With Varying Jet Geometries." ASME. J. Turbomach. March 2013; 135(2): 021010. https://doi.org/10.1115/1.4006598
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