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Experimental and Computational Fluid Dynamics Based Determination of Flutter Limits in Supersonic Space Turbines

J. Turbomach.  -- January 2010 --  Volume 132,  Issue 1, 011010 (8 pages)
doi:10.1115/1.3072491

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Author(s):
Pieter Groth and Hans Mårtensson
Department of Aerothermodynamics, Volvo Aero Corporation, SE-461 81 Trollhättan, Sweden

Niklas Edin
Department of Turbines and Rotors, Volvo Aero Corporation, SE-461 81 Trollhättan, Sweden
Turbines operating at high pressure in high velocity flow are susceptible to flutter. As reduced frequencies become sufficiently low, negative aerodynamic damping will be found in some modes. Ensuring that the total system damping is positive over the entire turbine operating envelope for all modes is of utmost importance in any design since flutter in a turbine often causes blade failures. This is in contrast to the normal engineering approach, which is to require a positive aerodynamic damping. A unique test campaign with a 1.5 stage supersonic space turbine has been performed. The turbine was operated at simulated running conditions over a large operating envelope in order to map out flutter limits. During the test, flutter was intentionally triggered at seven different operating conditions. Unique data have been obtained during the test that supports validation of design tools and enables better understanding of flutter in this type of turbine. Based on the data the flutter boundary for the turbine could be established. Using computational fluid dynamics (CFD) tools flutter was predicted at all operating points where the flutter limit was crossed. Both in predictions and as evidenced in test the two nodal diameter backward traveling mode was the most unstable. In addition to this predicted values of aerodynamic damping at flutter agreed well with damping estimated from measured amplitude growth.

©2010 American Society of Mechanical Engineers

History: Received 28 August 2008; revised 16 September 2008; published 16 September 2009
doi: http://dx.doi.org/10.1115/1.3072491

KEYWORDS and PACS

Keywords
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PUBLICATION DATA

Coden:
JOTUEI
ISSN:
0889-504X (print)   1528-8900 (online)
Publisher:
AIP is a member of CrossRef ASME

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