Windage Torque Reduction in Low-Pressure Turbine Cavities Part I: Concept Design and Numerical Investigations

Author:

Li Zhihui1,Christodoulou Loizos2,Jefferson-Loveday Richard3,Ambrose Stephen2,Jackson Richard4,Lock Gary D.4,Sangan Carl M.4,Scobie James A.4

Affiliation:

1. Imperial College London Department of Aeronautics, , London SW7 2AZ , UK

2. University of Nottingham Gas Turbine and Transmissions Research Centre (G2TRC), Faculty of Engineering, , Nottingham NG7 2TU , UK

3. King’s College London Department of Engineering, , London WC2R 2LS , UK

4. University of Bath Department of Mechanical Engineering, , Bath BA2 7AY , UK

Abstract

Abstract The windage torque on rotational walls has a negative effect on the performance of the low-pressure turbine. In this paper, three novel flow control concepts (FCCs) were proposed to reduce the windage torque within a turbine stator well, with upstream and downstream cavities connected by an interstage labyrinth seal. The swirl and flow pattern inside a reference turbine cavity was first investigated and the potential locations for the FCCs were identified using numerical simulations. FCC1 was a circumferential row of leaned deflectors downstream of the labyrinth seal. FCC2 was a set of deflector vanes and platform to optimize the ingress swirl at high radius in the upstream cavity. FCC3 combined the two flow concepts and the superposition resulted in a stator well windage torque reduction of 70% when compared to the baseline design. The FCCs also showed performance benefits at off-design conditions and over a range of secondary flow rates to the cavity. In Part II, the numerical analysis and performance of the FCCs are validated in an experimental rig using additively manufactured components.

Publisher

ASME International

Subject

Mechanical Engineering

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