LOUVER SLOT COOLING AND FULL-COVERAGE FILM COOLING WITH A COMBINATION INTERNAL COOLANT SUPPLY

被引:0
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作者
Click, Austin [1 ]
Ligrani, Phillip M. [1 ]
Hockensmith, Maggie [1 ]
Knox, Joseph [1 ]
Larson, Chandler [1 ]
Fairbanks, Avery [1 ]
Liberatore, Federico [2 ]
Patel, Rajeshriben [2 ]
Ho, Yin-Hsiang [3 ]
机构
[1] Univ Alabama, Prop Res Ctr, Dept Mech & Aerosp Engn, 5000 Technol Dr,Olin B King Technol Hall, Huntsville, AL 35899 USA
[2] Solar Turbines Inc, Combust Engn, 2200 Pacific Highway,Mail Zone E-4, San Diego, CA 92186 USA
[3] Solar Turbines Inc, Combust Engn, Methods & Anal, 2200 Pacific Highway,Mail Zone E-4, San Diego, CA 92186 USA
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中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Within the present investigation, a louver slot is employed upstream of an array full coverage film cooling holes. Cooling air is supplied using a combination arrangement, with cross-flow and impingement together. The louver consists of a row of film cooling holes, contained within a specially-designed device which concentrates, and directs the coolant from a slot, so that it then advects as a layer downstream along the test surface. This louver-supplied coolant is then supplemented by coolant which emerges from different rows of downstream film cooling holes. The same coolant supply passage is employed for the louver row of holes, as well as for the film cooling holes, such that different louver and film cooling mass flow rates are set by different hole diameters for the two different types of cooling holes. The results are different from data provided by past investigations, because of the use and arrangement of the louver slot, and because of the unique coolant supply configurations. The experimental results are given for mainstream Reynolds numbers from 107000 to 114000. Full-coverage blowing ratios are constant with streamwise location along the test surface, and range from 3.68 to 5.70. Corresponding louver slot blowing ratios then range from 1.72 to 2.65. Provided are heat transfer coefficient and adiabatic effectiveness distributions, which are measured along the mainstream side of the test plate. Both types of data show less variation with streamwise development location, relative to results obtained without a louver employed, when examined at the same approximate effective blowing ratio, mainstream Reynolds number, cross flow Reynolds number, and impingement jet Reynolds number. When compared at the same effective blowing ratio or the same impingement jet Reynolds number, spanwise-averaged heat transfer coefficients are consistently lower, especially for the downstream regions of the test plate, when the louver is utilized. With the same type of comparisons, the presence of the louver slot results in significantly higher values of adiabatic film cooling effectiveness (spanwise-averaged), particularly at and near the upstream portions of the test plate. With such characteristics, dramatic increases in thermal protection are provided by the presence of the louver slot, the magnitudes of which vary with experimental condition and test surface location.
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页数:13
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