Development of Taylor-Go¨rtler Vortices Over the Pressure Surface of a Turbine Blade
Author:
Wang H. P.1, Olson S. J.2, Goldstein R. J.3
Affiliation:
1. Pratt & Whitney 2. TSI, Inc. 3. Department of Mechanical Engineering, University of Minnesota, Minneapolis, Minnesota
Abstract
The naphthalene sublimation technique is used to investigate the development of Taylor-Go¨rtler vortices over the pressure surface of a simulated high performance turbine blade. Large spanwise variation in mass transfer is observed downstream on the pressure surface in the two-dimensional flow region for cases with low freestream turbulence, indicating the existence of Taylor-Go¨rtler vortices. Different average and local mass transfer rates for the same flow conditions suggest that roughness variation near the leading edge affects the initial formation of Taylor-Go¨rtler vortices. Larger and more uniformly distributed roughness at the leading edge produces much stronger Taylor-Go¨rtler vortices downstream and greatly enhances the mass transfer rate. The variation between the vortices does not change appreciably along the flow direction. The flow in the boundary layer is laminar over the entire pressure surface. In the presence of external disturbances such as high freestream turbulence or a boundary layer trip, no Taylor-Go¨rtler vortices are observed.
Publisher
ASME International
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science
Reference5 articles.
1. Wang, H. P., Goldstein, R. J., and Olson, S. J., 1999, “Effect of High Free-Stream Turbulence with Large Length Scale on Blade Heat/Mass Transfer,” ASME J. Turbomach., 121, pp. 1–8. 2. Goldstein, R. J., and Cho, H. H., 1995, “A Review of Mass Transfer Measurements using Naphthalene Sublimation,” Exp. Therm. Fluid Sci., 10, pp. 416–434. 3. Coleman, H. W., and Steel, W. G., Jr., 1999, Experimentation and Uncertainty Analysis for Engineers, 2nd ed., Wiley, New York. 4. Sparrow, E. M., Quack, H., and Boerner, C. J., 1970, “Local Nonsilmilarity Boundary-Layer Solutions,” AIAA J., 8, pp. 1936–1942. 5. Liepmann, H. W., 1945, “Investigation of Boundary Layer Transition on Concave Walls,” NACA Wartime Report.
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