Unsteady Simulation of an Axial Compressor Stage With Casing and Blade Passive Treatments

Author:

Gourdain Nicolas1,Leboeuf Francis2

Affiliation:

1. Computational Fluid Dynamics Team, CERFACS, 42 Avenue Gaspard Coriolis, Toulouse 31057, France

2. Laboratoire de Mécanique des Fluides et d’Acoustique, UMR CNRS 5509, University of Lyon, 36 Avenue Guy de Collongue, Ecully 69034, France

Abstract

This paper deals with the numerical simulation of technologies to increase the compressor performances. The objective is to extend the stable operating range of an axial compressor stage using passive control devices located in the tip region. First, the behavior of the tip leakage flow is investigated in the compressor without control. The simulation shows an increase in the interaction between the tip leakage flow and the main flow when the mass flow is reduced, a phenomenon responsible for the development of a large flow blockage region at the rotor leading edge. A separation of the rotor suction side boundary layer is also observed at near stall conditions. Then, two approaches are tested in order to control these flows in the tip region. The first one is a casing treatment with nonaxisymmetric slots. The method showed a good ability to control the tip leakage flow but failed to reduce the boundary layer separation on the suction side. However, an increase in the operability was observed but with a penalty for the efficiency. The second approach is a blade treatment that consists of a longitudinal groove built in the tip of each rotor blade. The simulation pointed out that the device is able to control partially all the critical flows with no penalty for the efficiency. Finally, some recommendations for the design of passive treatments are presented.

Publisher

ASME International

Subject

Mechanical Engineering

Reference32 articles.

1. Moore, F. K., and Greitzer, E.M., 1985, “A Theory of Post-Stall Transients in Axial Compression Systems, Part I: Development of Equations, Part II: Applications,” ASME Paper Nos. 85-GT-171 and 85-GT-172.

2. Spakovszky, Z. , 2001, “Application of Axial and Radial Compressor Dynamic System Modeling,” Ph.D. thesis, Massachusetts Institute of Technology, Cambridge, MA.

3. Route to Surge for a Throttled Compressor: A Numerical Study;Schmidtmann;J. Fluids Struct.

4. Numerical Simulation of Rotating Stall in a Subsonic Compressor;Gourdain;Aerosp. Sci. Technol.

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