The present study investigates the local heat (mass) transfer characteristics of flow through perforated plates. Two parallel perforated plates placed, relative to each other, in either staggered, in-line or shifted in one direction. Hole length to diameter ratio of 1.5, hole pitch to diameter ratio of 3.0, and distance between the perforated plates of 1 to 3 hole diameters are used at hole Reynolds numbers of 3,000 to 14,000. For flows through the staggered layers and the layers shifted in one direction, the mass transfer rates on the windward surface of the second wall increase approximately 50% from impingement cooling alone and are about three to four times that with effusion cooling alone (single perforated plate). The high transfer rate is induced by strong secondary vortices formed between two adjacent impinging jets that are accelerated by the effusion flow. The overall transfer rate is dominated by the target (second) surface (approximately 50%) instead of the inside hole surface that is dominant with a single plate case. The transfer coefficient for the in-line layers is approximately 100% higher on the windward surface of the second wall than that of the single plate case. The transfer coefficient on the leeward surface for the second plate is affected little by upstream flow conditions.
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ASME Turbo Expo 2004: Power for Land, Sea, and Air
June 14–17, 2004
Vienna, Austria
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
0-7918-4168-5
PROCEEDINGS PAPER
Effect of Hole Arrangements on Local Heat/Mass Transfer for Impingement/Effusion Cooling With Small Hole Spacing Available to Purchase
Hyung-Hee Cho,
Hyung-Hee Cho
Yonsei University, Seoul, Korea
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Dong Ho Rhee,
Dong Ho Rhee
Yonsei University, Seoul, Korea
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R. J. Goldstein
R. J. Goldstein
University of Minnesota, Minneapolis, MN
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Hyung-Hee Cho
Yonsei University, Seoul, Korea
Dong Ho Rhee
Yonsei University, Seoul, Korea
R. J. Goldstein
University of Minnesota, Minneapolis, MN
Paper No:
GT2004-53685, pp. 643-652; 10 pages
Published Online:
November 24, 2008
Citation
Cho, H, Rhee, DH, & Goldstein, RJ. "Effect of Hole Arrangements on Local Heat/Mass Transfer for Impingement/Effusion Cooling With Small Hole Spacing." Proceedings of the ASME Turbo Expo 2004: Power for Land, Sea, and Air. Volume 3: Turbo Expo 2004. Vienna, Austria. June 14–17, 2004. pp. 643-652. ASME. https://doi.org/10.1115/GT2004-53685
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