Experimental and Numerical Investigation of the Unsteady Surface Pressure in a Three-Stage Model of an Axial High Pressure Turbine

Author:

Kachel Carmen E.1,Denton John D.1

Affiliation:

1. Whittle Laboratory, Engineering Department, Cambridge University, Cambridge, UK

Abstract

This paper presents the results of a numerical and experimental investigation of the unsteady pressure field in a three-stage model of a high pressure steam turbine. Unsteady surface pressure measurements were taken on a first and second stage stator blade, respectively. The measurements in the blade passage were supplemented by time resolved measurements between the blade rows. The explanation of the origin of the unsteady pressure fluctuations was supported by unsteady three-dimensional computational fluid dynamic calculations of which the most extensive calculation was performed over two stages. The mechanisms affecting the unsteady pressure field were: the potential field frozen to the upstream blade row, the pressure waves originating from changes in the potential pressure field, the convected unsteady velocity field, and the passage vortex of the upstream blade row. One-dimensional pressure waves and the unsteady variation of the pitchwise pressure gradient due to the changing velocity field were the dominant mechanisms influencing the magnitude of the surface pressure fluctuations. The magnitude of these effects had not been previously anticipated to be more important than other recognized effects.

Publisher

ASME International

Subject

Mechanical Engineering

Reference23 articles.

1. Dénos, R., Arts, T., Paniagua, G., Michelassi, V., and Martelli, F., 2000, “Investigation of the Unsteady Rotor Aerodynamics in a Transonic Turbine Stage,” ASME Paper No. 2000-GT-435.

2. Adami, P., Belardini, E., Martelli, F., and Michelassi, V., 2001, “Unsteady Rotor/Stator Interaction: An Improved Unstructured Approach,” ASME Paper No. 2001-GT-0356.

3. Moss, R. W., Ainsworth, R. W., Sheldrake, C. D., and Miller, R., 1997, “The Unsteady Pressure Field Over a Turbine Blade Surface: Visualization and interpretation of Experimental Data,” ASME Paper No. 97-GT-474.

4. Abhari, R., Busby, J., Davis, R., Delaney, R., Dorney, D., Dunn, M., Haldemann, C., and Venable, B., 1998, “Influence of Vane-Blade Spacing on Transonic Turbine Stage Aerodynamics, Part 1: Time Averaged Data and Analysis,” ASME Paper No. 98-GT-481.

5. Abhari, R., Busby, J., Davis, R., Delaney, R., Dorney, D., Dunn, M., Haldemann, C., and Venable, B., 1998, “Influence of Vane-Blade Spacing on Transonic Turbine Stage Aerodynamics, Part II: Time-Resolved Data and Analysis,” ASME Paper No. 98-GT-482.

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