The present study provides new effusion cooling data for both surfaces of full coverage effusion cooling plate. For the effusion cooled surface, presented are spatially-resolved distributions of surface adiabatic film cooling effectiveness, and surface heat transfer coefficients (measured using transient techniques and infrared thermography). For the impingement cooled surface, presented are spatially-resolved distributions of surface Nusselt numbers (measured using steady-state liquid crystal thermography). To produce this cool side augmentation, impingement jet arrays at different jet Reynolds numbers, from 2720 to 11100, are employed. Experimental data are given for a sparse effusion hole array, with spanwise and streamwise impingement hole spacing such that coolant jet hole centerlines are located midway between individual effusion hole entrances. Considered are initial effusion blowing ratios from 3.3 to 7.5, with subsonic, incompressible flow. The velocity of the freestream flow which is adjacent to the effusion cooled boundary layer is increasing with streamwise distance, due to a favorable streamwise pressure gradient. Such variations are provided by a main flow passage contraction ratio CR of 4. Of particular interest are effects of impingement jet Reynolds number, effusion blowing ratio, and streamwise development. Also included are comparisons of impingement jet array cooling results with: (i) results associated with cross flow supply cooling with CR = 1 and CR = 4, and (ii) results associated with impingement supply cooling with CR = 1, when the mainstream pressure gradient is near zero. Overall, the present results show that, for the same main flow Reynolds number, approximate initial blowing ratio, and streamwise location, significantly increased thermal protection is generally provided when the effusion coolant is provided by an array of impingement cooling jets, compared to a cross flow coolant supply.
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ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition
June 11–15, 2018
Oslo, Norway
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
978-0-7918-5109-8
PROCEEDINGS PAPER
Double Wall Cooling of a Full Coverage Effusion Plate With Main Flow Pressure Gradient, Including Internal Impingement Array Cooling
Sneha Reddy Vanga,
Sneha Reddy Vanga
University of Alabama in Huntsville, Huntsville, AL
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Zhong Ren,
Zhong Ren
University of Alabama in Huntsville, Huntsville, AL
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Austin J. Click,
Austin J. Click
University of Alabama in Huntsville, Huntsville, AL
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Phil Ligrani,
Phil Ligrani
University of Alabama in Huntsville, Huntsville, AL
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Federico Liberatore,
Federico Liberatore
Solar Turbines, Inc., San Diego, CA
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Rajeshriben Patel,
Rajeshriben Patel
Solar Turbines, Inc., San Diego, CA
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Ram Srinivasan,
Ram Srinivasan
Solar Turbines, Inc., San Diego, CA
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Yin-Hsiang Ho
Yin-Hsiang Ho
Solar Turbines, Inc., San Diego, CA
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Sneha Reddy Vanga
University of Alabama in Huntsville, Huntsville, AL
Zhong Ren
University of Alabama in Huntsville, Huntsville, AL
Austin J. Click
University of Alabama in Huntsville, Huntsville, AL
Phil Ligrani
University of Alabama in Huntsville, Huntsville, AL
Federico Liberatore
Solar Turbines, Inc., San Diego, CA
Rajeshriben Patel
Solar Turbines, Inc., San Diego, CA
Ram Srinivasan
Solar Turbines, Inc., San Diego, CA
Yin-Hsiang Ho
Solar Turbines, Inc., San Diego, CA
Paper No:
GT2018-77036, V05BT13A018; 14 pages
Published Online:
August 30, 2018
Citation
Vanga, SR, Ren, Z, Click, AJ, Ligrani, P, Liberatore, F, Patel, R, Srinivasan, R, & Ho, Y. "Double Wall Cooling of a Full Coverage Effusion Plate With Main Flow Pressure Gradient, Including Internal Impingement Array Cooling." Proceedings of the ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition. Volume 5B: Heat Transfer. Oslo, Norway. June 11–15, 2018. V05BT13A018. ASME. https://doi.org/10.1115/GT2018-77036
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