Acoustic energy balance during the onset, growth and saturation of thermoacoustic instabilities
File(s)GTP-20-1540_v1.pdf (392.1 KB)
Accepted version
Author(s)
Gaudron, Renaud
Yang, Dong
Morgans, Aimee
Type
Journal Article
Abstract
Thermoacoustic instabilities can occur in a wide range of combustors and are prejudicial since they can lead to increased mechanical fatigue or even catastrophic failure. A well-established formalism to predict the onset, growth and saturation of such instabilities is based on acoustic network models. This approach has been successfully employed to predict the frequency and amplitude of limit cycle oscillations in a variety of combustors. However, it does not provide any physical insight in terms of the acoustic energy balance of the system. On the other hand, Rayleigh's criterion may be used to quantify the losses, sources and transfers of acoustic energy within and at the boundaries of a combustor. However, this approach is cumbersome for most applications because it requires computing volume and surface integrals and averaging over an oscillation cycle. In this work, a new methodology for studying the acoustic energy balance of a combustor during the onset, growth and saturation of thermoacoustic instabilities is proposed. The two cornerstones of this new framework are the acoustic absorption coefficient Delta and the cycle-to-cycle acoustic energy ratio lambda, both of which do not require computing integrals. Used along with a suitable acoustic network model, where the flame frequency response is described using the weakly nonlinear Flame Describing Function (FDF) formalism, these two dimensionless numbers are shown to characterize: 1) the variation of acoustic energy stored within the combustor between two consecutive cycles (rest of the abstract in the article).
Date Issued
2021-03-10
Date Acceptance
2020-09-19
Citation
Journal of Engineering for Gas Turbines and Power, 2021, 143 (4), pp.1-10
ISSN
0742-4795
Publisher
ASME International
Start Page
1
End Page
10
Journal / Book Title
Journal of Engineering for Gas Turbines and Power
Volume
143
Issue
4
Copyright Statement
© 2020 by ASME
Sponsor
European Research Council
Commission of the European Communities
Identifier
https://asmedigitalcollection.asme.org/gasturbinespower/article/143/4/041026/1092486/Acoustic-Energy-Balance-During-the-Onset-Growth
Grant Number
772080
Subjects
0901 Aerospace Engineering
0913 Mechanical Engineering
Energy
Publication Status
Published
Date Publish Online
2021-01-10