Improvements in efficiency and performance of gas turbines require a better understanding of the internal cooling air system which provides the turbine blades with cooling air. With the increase of cooling air passing through the internal air system, a greater amount of air borne particles is transported to the film cooling holes at the turbine blade surface. In spite of their small size, these holes are critical for blockage. Blockage of only a few holes could have harmful effects on the cooling film surrounding the blade. As a result, a reduced mean time between maintenance or even unexpected operation faults of the gas turbine during operation could occur. Experience showed a complex interaction of cooling air under different flow conditions and its particle load. To get more familiar with all these influences and the system itself, a test rig has been built. With this test rig, the behavior of particles in the internal cooling air system can be studied at realistic flow conditions compared to a modern, heavy duty gas turbine. It is possible to simulate different particle sizes and dust concentrations in the coolant air. The test rig has been designed to give information about the quantity of separated particles at various critical areas of the internal air system [1]. The operation of the test rig as well as analysis of particles in such a complex flow system bear many problems, addressed in previous papers [1,2,3]. New theoretical studies give new and more accurate results, compared to the measurements. Furthermore the inspection of the test rig showed dust deposits at unexpected positions of the flow path, which will be discussed by numerical analysis.
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ASME/JSME 2003 4th Joint Fluids Summer Engineering Conference
July 6–10, 2003
Honolulu, Hawaii, USA
Conference Sponsors:
- Fluids Engineering Division
ISBN:
0-7918-3697-5
PROCEEDINGS PAPER
Experimental and Numerical Analysis of the Flow Structure and Dust Separation Inside a Pre-Swirl Cooling Air System Available to Purchase
O. Schneider,
O. Schneider
Gerhard-Mercator University of Duisburg, Duisburg, Germany
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H. J. Dohmen,
H. J. Dohmen
Gerhard-Mercator University of Duisburg, Duisburg, Germany
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F.-K. Benra,
F.-K. Benra
Gerhard-Mercator University of Duisburg, Duisburg, Germany
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D. Brillert
D. Brillert
Siemens AG Power Generation, Mu¨lheim, Germany
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O. Schneider
Gerhard-Mercator University of Duisburg, Duisburg, Germany
H. J. Dohmen
Gerhard-Mercator University of Duisburg, Duisburg, Germany
F.-K. Benra
Gerhard-Mercator University of Duisburg, Duisburg, Germany
D. Brillert
Siemens AG Power Generation, Mu¨lheim, Germany
Paper No:
FEDSM2003-45096, pp. 577-582; 6 pages
Published Online:
February 4, 2009
Citation
Schneider, O, Dohmen, HJ, Benra, F, & Brillert, D. "Experimental and Numerical Analysis of the Flow Structure and Dust Separation Inside a Pre-Swirl Cooling Air System." Proceedings of the ASME/JSME 2003 4th Joint Fluids Summer Engineering Conference. Volume 2: Symposia, Parts A, B, and C. Honolulu, Hawaii, USA. July 6–10, 2003. pp. 577-582. ASME. https://doi.org/10.1115/FEDSM2003-45096
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