The present experimental investigation considers a full coverage film cooling arrangement with different streamwise static pressure gradients. The film cooling holes in adjacent streamwise rows are staggered with respect to each other, with sharp edges and streamwise inclination angles of 20 deg with respect to the liner surface. Data are provided for turbulent film cooling, contraction ratios of 1 and 4, blowing ratios (BRs) (at the test section entrance) of 2.0, 5.0, and 10.0, a coolant Reynolds number of 12,000, freestream temperatures from 75 °C to 115 °C, a film hole diameter of 7 mm, and density ratios from 1.15 to 1.25. Nondimensional streamwise and spanwise film cooling hole spacings, X/D and Y/D, are 18 and 5, respectively. Data illustrating the effects of contraction ratio, BR, and streamwise location on local, line-averaged, and spatially averaged adiabatic film effectiveness data; and on local, line-averaged and spatially averaged heat transfer coefficient data are presented. Varying BR values are present along the length of the contraction passage, which contains the cooling hole arrangement, when contraction ratio is 4. Dependence on BR indicates important influences of coolant concentration and distribution. For example, line-averaged and spatially averaged adiabatic effectiveness data show vastly different changes with BR for the configurations with contraction ratios of 1 and 4. In addition, much larger effectiveness alterations are present as BR changes from 2.0 to 10.0, when significant acceleration is present and Cr = 4 (in comparison with the Cr = 1 data).
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March 2015
Research-Article
Full-Coverage Film Cooling: Heat Transfer Coefficients and Film Effectiveness for a Sparse Hole Array at Different Blowing Ratios and Contraction Ratios
Matt Goodro,
Matt Goodro
3
Department of Engineering Science,
University of Oxford
,Oxford
, UK
3Present address: Mechanical Engineer, Hill Air Force Base, USAF, 6030 Gum Lane, Bldg. 1217, Hill AFB, UT 84056.
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Michael D. Fox,
Michael D. Fox
4
Solar Turbines Inc.
,San Diego
, CA
4Present address: Solar Turbines Inc., Heat Transfer Research, 2200 Pacific Highway, P. O. Box 85376, Mail Zone C-9, San Diego, CA 92186-5376.
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Hee-Koo Moon
Hee-Koo Moon
4
Solar Turbines Inc.
,San Diego
, CA
4Present address: Solar Turbines Inc., Heat Transfer Research, 2200 Pacific Highway, P. O. Box 85376, Mail Zone C-9, San Diego, CA 92186-5376.
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Phil Ligrani
Matt Goodro
Department of Engineering Science,
University of Oxford
,Oxford
, UK
Michael D. Fox
Solar Turbines Inc.
,San Diego
, CA
Hee-Koo Moon
Solar Turbines Inc.
,San Diego
, CA
1Corresponding author.
2Present address: Eminent Scholar in Propulsion, Professor of Mechanical and Aerospace Engineering, College of Engineering, Department of Mechanical and Aerospace Engineering, Propulsion Research Center, Olin B. King Technology Hall S236, University of Alabama in Huntsville, Huntsville, AL 35899.
3Present address: Mechanical Engineer, Hill Air Force Base, USAF, 6030 Gum Lane, Bldg. 1217, Hill AFB, UT 84056.
4Present address: Solar Turbines Inc., Heat Transfer Research, 2200 Pacific Highway, P. O. Box 85376, Mail Zone C-9, San Diego, CA 92186-5376.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received April 9, 2013; final manuscript received November 14, 2014; published online December 17, 2014. Assoc. Editor: Terry Simon.
J. Heat Transfer. Mar 2015, 137(3): 032201 (12 pages)
Published Online: March 1, 2015
Article history
Received:
April 9, 2013
Revision Received:
November 14, 2014
Online:
December 17, 2014
Citation
Ligrani, P., Goodro, M., Fox, M. D., and Moon, H. (March 1, 2015). "Full-Coverage Film Cooling: Heat Transfer Coefficients and Film Effectiveness for a Sparse Hole Array at Different Blowing Ratios and Contraction Ratios." ASME. J. Heat Transfer. March 2015; 137(3): 032201. https://doi.org/10.1115/1.4029168
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