The high-resolution heat transfer coefficient and the film effectiveness measurements on a full-film cooling nozzle guide vane with compound and axial angle holes were obtained using a transient liquid crystal technique. The tests were performed in a scaled-up
two-passage cascade at an inlet Reynolds number of 1.0×10
5
. There are eight rows of compound angle cylinder film holes around the leading edge
21 rows of axial angle cylinder holes on the pressure side
and 24 rows of axial angle cylinder holes on the suction side. The holes are fed from two internal plenum with a mass flow ratio of 4.56% in the first plenum and 4.67% in the second plenum. The results show that the film cover region shrinks on the suction side and expands on the pressure side due to the influence of passage vortex. The heat transfer coefficient and the film
cooling effectiveness are higher in the near hole region. The heat transfer coefficient is higher and the film cooling effectiveness is lower near the leading edge. The film cooling effectiveness is about 0.4 on the suction side and about 0.35 on the pressure side
ZHANG Zongwei, ZHU Huiren, DU Xiaoqin, et al. Investigations of endwall heat transfer in the rectangular passage with 60-degree ribs and suction holes[J].Journal of Xi'an Jiaotong University, 2010, 44(5): 116-119.
GUO S M, LAI C C, JONES T V, et al. The application of thin-film technology to measure turbine-vane heat transfer and effectiveness in a film-cooled, engine-simulated environment[J]. International Journal of Heat and Fluid Flow, 1998,19(6):594-600.
WAYE S K, BOGARD D G. High-resolution film cooling effectiveness comparison of axial and compound angle holes on the suction side of a turbine vane[J]. Journal of Turbomachinery, 2007,129(2):202-211.
DHUNGEL A, LU Y, PHILLIPS W, et al. Film cooling from a row of holes supplemented with antivortex holes[J]. Journal of Turbomachinery, 2009,131(2):21007-21010.
BAI Jiangtao, ZHU Huiren, ZHANG Zongwei, et al. Measurements of heat transfer coefficient and film cooling effectiveness distribution on a vane using transient liquid crystal technique[J]. Journal of Xi'an Jiaotong University, 2010, 44(11):92-97.
IRELAND P T, JONES T V. Liquid crystal measurements of heat transfer and surface shear stress[J]. Measurement Science and Technology, 2000, 11(7):969-986.
BAI Jiangtao, ZHU Huiren, LIU Cunliang. Analysis of uncertainties in two-parameter transient heat transfer measurements with liquid crystal[J]. Journal of Aerospace Power, 2009, 24(9):1945-1951.
WANG H P, OLSON S J, GOLDSTEIN R J, et al. Flow visualization in a linear turbine cascade of high performance turbine blades[J]. Journal of Turbomachinery, 1997, 119(1):1-8.