The Flutter Stability of Mistuned Bladed Disks Subjected to the Coriolis Effect

Author:

Tacher Anthony12,Thouverez Fabrice3,Armand Jason4

Affiliation:

1. École Centrale de Lyon, Laboratoire de Tribologie et Dynamique des Systèmes, UMR CNRS 5513 , 36 avenue Guy de Collongue, Écully 69134, France ; , Châteaufort, Magny-Les-Hameaux 78114, France

2. Digital Sciences & Technologies, Safran Tech, Rue des Jeunes Bois , 36 avenue Guy de Collongue, Écully 69134, France ; , Châteaufort, Magny-Les-Hameaux 78114, France

3. École Centrale de Lyon, Laboratoire de Tribologie et Dynamique des Systèmes, UMR CNRS 5513 , 36 avenue Guy de Collongue, Écully 69134, France

4. Digital Sciences & Technologies, Safran Tech, Rue des Jeunes Bois , Châteaufort Magny-Les-Hameaux 78114, France

Abstract

Abstract Intentional frequency mistuning referred to as detuning is known to be an effective mean to prevent aeroelastic flutter in gas turbines. The Coriolis effect, which is usually discarded, can reduce the mistuning effects and therefore compromise the stabilizing effect of detuning with respect to flutter. This paper presents an original study of the influence of the Coriolis effect on the aeroelastic stability of a single-piece bladed disk (blisk), which made it possible to highlight for the first time the complex interactions between flutter, mistuning, and the Coriolis effect. The blisk is modeled with a lumped parameter model and the aeroelastic self-excitations using Whitehead's theory. A genetic algorithm is used to determine the best detuning pattern to stabilize the flutter-prone blisk. The results show that if the detuning pattern is identified without taking the Coriolis effect into account, the detuned blisk can still be prone to flutter. The key driver of this loss of stability is the frequency separation of the modes resulting from the Coriolis effect, which decreases the mode interactions that are required to stabilize the system. This article demonstrates the need to consider the Coriolis effect when studying the aeroelastic stability of cyclic structures with flexible disk and blade-disk coupling. By doing so, it is shown that a higher level of detuning is needed to compensate the adverse effects of Coriolis and ensure stability to flutter.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference53 articles.

1. General Theory of Aerodynamic Instability and the Mechanism of Flutter,1934

2. Historical Development of Aircraft Flutter;J. Aircr.,1981

3. System Mode Shapes in the Flutter of Compressor Blade Rows;J. Aeronaut. Sci.,1956

4. Force and Moment Coefficients for Vibrating Aerofoils in Cascade,1960

5. Flutter and Response of a Mistuned Cascade in Incompressible Flow;AIAA J.,1982

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