Three-Dimensional Blade Boundary Layer and Endwall Flow Development in the Nozzle Passage of a Single Stage Turbine

Author:

Ristic D.1,Lakshminarayana B.1

Affiliation:

1. Center for Gas Turbines & Power, Pennsylvania State University, University Park, PA 16802

Abstract

The three-dimensional viscous flow field development in the nozzle passage of an axial flow turbine stage was measured using a “x” hot-wire probe. The measurements were carried out at two axial stations on the endwall and vane surfaces and at several spanwise and pitchwise locations. Static pressure measurements and flow visualization, using a fluorescent oil technique, were also performed to obtain the location of transition and the endwall limiting streamlines. The boundary layers on the vane surface were found to be very thin and mostly laminar, except on the suction surface downstream of 70 percent axial chord. Strong radial pressure gradient, especially close to the suction surface, induces strong radial flow velocities in the trailing edge regions of the blade. On the endwalls, the boundary layers were much thicker, especially near the suction corner of the casing surface, caused by the secondary flow. The secondary flow region near the suction surface-casing corner indicated the presence of the passage vortex detached from the vane surface. The boundary layer code accurately predicts the three-dimensional boundary layers on both vane surfaces and endwall in the regions where the influence of the secondary flow is small.

Publisher

ASME International

Subject

Mechanical Engineering

Reference15 articles.

1. Anderson O. L. , 1985, “Assessment of a 3-D Boundary Layer Analysis to Predict Heat Transfer and Flow Field in Turbine Passage,” NASA CR-174894 (Also see ASME Journal of Fluids Engineering, Vol. 109, pp. 41–50.

2. Bammert, K., and Sandstede, H., 1980, “Measurement of the Boundary Layer Development along a Turbine Blade with Rough Surface,” ASME Paper 80-GT-40.

3. Blanco, E., Ballesteros, R., and Santolaria, C, 1993, “Angular Range and Uncertainty Analysis of Non-Orthogonal Crossed Hot Wire Probes,” ASME Thermal Anemometry, FED-Vol. 167.

4. Cebeci, T., and Smith, A. M. O., 1974, Analysis of Turbulent Boundary Layers, Academic Press, New York.

5. Gregory-Smith D. G. , et al., 1988, “Growth of Secondary Losses and Vorticity in an Axial Turbine Cascade,” ASME Journal of Turbomachinery, Vol. 110, pp. 1–8.

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1. Advance Measurement Techniques in Turbomachines;Rotating Machinery;2020-01-08

2. Flow Measurement Techniques in Turbomachinery;Springer Handbook of Experimental Fluid Mechanics;2007

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