Impact of the Flow on an Acoustic Excitation System for Aeroelastic Studies

Author:

Freund Oliver,Bartelt Michael1,Mittelbach Marc2,Montgomery Matthew3,Vogt Damian M.4,Seume Joerg R.1

Affiliation:

1. Institute of Turbomachinery and Fluid Dynamics, Leibniz University Hannover, Appelstrasse 9, Hannover DE-30167, Germany

2. Siemens AG, Energy Sector, Mellinghofer Str. 55, Muelheim an der Ruhr DE-45473, Germany

3. Siemens Energy, Inc., 4400 Alafaya Trail, Orlando, FL 32826

4. Royal Institute of Technology, Department of Energy Technology, Stockholm S-10044, Sweden

Abstract

The flow in turbomachines is highly unsteady. Effects like vortices, flow separation, and shocks are an inevitable part of the turbomachinery flow. Furthermore, high blade aspect ratios, aerodynamically highly loaded and thin profiles increase the blade sensitivity to vibrations. According to the importance of aeroelasticity in turbomachines, new strategies for experimental studies in rotating machines must be developed. A basic requirement for aeroelastic research in rotating machines is to be able to excite the rotor blades in a defined manner. Approaches for active blade excitation in running machines may be piezoelectric elements, magnetism, or acoustics. Contact-free excitation methods are preferred, since additional mistuning is brought into the investigated system otherwise. A very promising method for aeroelastic research is the noncontact acoustic excitation method. In this paper, investigations on the influence of an annular cascade flow on the blade vibration, excited by an acoustic excitation system, are presented for the first time. These investigations are carried out at the Aeroelastic Test Rig of the Royal Institute of Technology in Stockholm. By varying the excitation angle, the outlet Mach number, and the relative position of the excited blade to the excitation system, the influence of the flow on the acoustic excitation is quantified. The results show that there is a strong dependency of the excited vibration amplitude on the excitation angle if the outlet Mach number is increased, which implies that preferable excitation directions exist. Furthermore, it is shown that a benefit up to 23% in terms of excited vibration amplitude can be reached if the flow velocity is raised.

Publisher

ASME International

Subject

Mechanical Engineering

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