Investigation of Spiral and Sweeping Holes

Author:

Thurman Douglas1,Poinsatte Philip2,Ameri Ali3,Culley Dennis2,Raghu Surya4,Shyam Vikram2

Affiliation:

1. U.S. Army Research Laboratory, Cleveland, OH 44135 e-mail:

2. NASA Glenn Research Center, Cleveland, OH 44135 e-mail:

3. Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, OH 43210 e-mail:

4. Advanced Fluidics LLC, Columbia, MD 21045 e-mail:

Abstract

Surface infrared thermography, hotwire anemometry, and thermocouple surveys were performed on two new film cooling hole geometries: spiral/rifled holes and fluidic sweeping holes. The spiral holes attempt to induce large-scale vorticity to the film cooling jet as it exits the hole to prevent the formation of the kidney-shaped vortices commonly associated with film cooling jets. The fluidic sweeping hole uses a passive in-hole geometry to induce jet sweeping at frequencies that scale with blowing ratios. The spiral hole performance is compared to that of round holes with and without compound angles. The fluidic hole is of the diffusion class of holes and is therefore compared to a 777 hole and square holes. A patent-pending spiral hole design showed the highest potential of the nondiffusion-type hole configurations. Velocity contours and flow temperature were acquired at discreet cross sections of the downstream flow field. The passive fluidic sweeping hole shows the most uniform cooling distribution but suffers from low span-averaged effectiveness levels due to enhanced mixing. The data were taken at a Reynolds number of 11,000 based on hole diameter and freestream velocity. Infrared thermography was taken for blowing ratios of 1.0, 1.5, 2.0, and 2.5 at a density ratio of 1.05. The flow inside the fluidic sweeping hole was studied using 3D unsteady Reynolds-average Navier–Stokes (RANS).

Publisher

ASME International

Subject

Mechanical Engineering

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