The cooling performance of sweeping jet film cooling was studied on a turbine vane suction surface in a low-speed linear cascade wind tunnel. The sweeping jet holes consist of fluidic oscillators with an aspect ratio (AR) of unity and a hole spacing of Pd/D = 6. Infrared (IR) thermography was used to estimate the adiabatic film effectiveness at several blowing ratios and two different freestream turbulence levels (Tu = 0.3% and 6.1%). Convective heat transfer coefficient was measured by a transient IR technique, and the net heat flux benefit was calculated. The total pressure loss due to sweeping jet film cooling was characterized by traversing a total pressure probe at the exit plane of the cascade. Tests were performed with a baseline shaped hole (SH) (777-shaped hole) for comparison. The sweeping jet hole showed higher adiabatic film effectiveness than the 777-shaped hole in the near hole region. Although the unsteady sweeping action of the jet augments heat transfer, the net positive cooling benefit is higher for sweeping jet holes compared to 777 hole at particular flow conditions. The total pressure loss measurement showed a 12% increase in total pressure loss at a blowing ratio of M = 1.5 for sweeping jet hole, while 777-shaped hole showed a 8% total pressure loss increase at the corresponding blowing ratio.
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March 2019
Research-Article
Sweeping Jet Film Cooling on a Turbine Vane
Mohammad A. Hossain,
Mohammad A. Hossain
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
e-mail: hossain.49@osu.edu
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
e-mail: hossain.49@osu.edu
Search for other works by this author on:
Lucas Agricola,
Lucas Agricola
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Search for other works by this author on:
Ali Ameri,
Ali Ameri
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Search for other works by this author on:
James W. Gregory,
James W. Gregory
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
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Jeffrey P. Bons
Jeffrey P. Bons
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Search for other works by this author on:
Mohammad A. Hossain
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
e-mail: hossain.49@osu.edu
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
e-mail: hossain.49@osu.edu
Lucas Agricola
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Ali Ameri
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
James W. Gregory
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Jeffrey P. Bons
Aerospace Research Center,
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
Department of Mechanical and
Aerospace Engineering,
The Ohio State University,
Columbus, OH 43235
1Corresponding author.
Contributed by the International Gas Turbine Institute (IGTI) of ASME for publication in the JOURNAL OF TURBOMACHINERY. Manuscript received September 19, 2018; final manuscript received November 14, 2018; published online January 16, 2019. Editor: Kenneth Hall.
J. Turbomach. Mar 2019, 141(3): 031007 (11 pages)
Published Online: January 16, 2019
Article history
Received:
September 19, 2018
Revised:
November 14, 2018
Citation
Hossain, M. A., Agricola, L., Ameri, A., Gregory, J. W., and Bons, J. P. (January 16, 2019). "Sweeping Jet Film Cooling on a Turbine Vane." ASME. J. Turbomach. March 2019; 141(3): 031007. https://doi.org/10.1115/1.4042070
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