Analysis of Thermoacoustic Modes in Can-Annular Combustors Using Effective Bloch-Type Boundary Conditions

Author:

von Saldern Jakob G. R.1,Orchini Alessandro1,Moeck Jonas P.2

Affiliation:

1. Chair of Fluid Dynamics, Technische Universität Berlin, Berlin 10623, Germany

2. Department of Energy and Process Engineering, Norwegian University of Science and Technology, Trondheim 7491, Norway

Abstract

Abstract Heavy-duty gas turbines are commonly designed with can-annular combustors, in which all flames are physically separated. Acoustically, however, the cans communicate via the upstream located compressor plenum or at the downstream gaps found at the transition to the turbine inlet. In this study, a coupling condition that is based on a Rayleigh conductivity and acoustic flux conservation is derived. It enables acoustic communication between adjacent cans, in which one-dimensional acoustic waves propagate. In addition, because can-annular systems commonly feature a discrete rotational symmetry, the acoustic field can be expressed as a Bloch-periodic wave in the azimuthal direction. We demonstrate how the coupling conditions resulting in a combustion system with N cans can be expressed as an effective impedance for a single can. By means of this Bloch-type boundary condition, the thermoacoustics of a can-annular system can be analyzed considering only one can, thus reducing the size of the problem by a factor of N. Using this method, we investigate in frequency domain the effect of the coupling strength of a generic can-annular combustor consisting of 12 identical cans, which are connected at the downstream end. We describe generic features of can-annular systems that can be efficiently addressed with this framework and derive results on the frequency response of the cans at various Bloch numbers in the low-frequency and high-frequency limits. Furthermore, the formation of eigenvalue clusters with eigenvalues of close frequency and growth rate, but very different mode shapes is discussed.

Funder

Deutsche Forschungsgemeinschaft

Publisher

ASME International

Subject

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

Reference27 articles.

1. 3D Thermoacoustic Properties of Single Can and Multi Can Combustor Configurations,2008

2. Thermo-Acoustic Characterization of Can-Can Interaction of a Can-Annular Combustion System Based on Unsteady CFD LES Simulation,2017

3. Thermo-Acoustic Cross-Talk Between Cans in a Can-Annular Combustor;Int. J. Spray Combust. Dyn.,2017

4. Thermoacoustics of Can-Annular Combustors;ASME J. Eng. Gas Turbines Power,2019

5. Combustion-Acoustic Interactions Through Cross-Talk Area Between Adjacent Model Gas Turbine Combustors;Combust. Flame,2019

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