TY - JOUR
T1 - Identification of flame dynamics in a technically premixed combustor with compliant fuel injection
AU - Garcia, Nicolas M.
AU - Mocquard, Clément
AU - Désor, Marcel
AU - Ottinger, Joachim
AU - Polifke, Wolfgang
N1 - Publisher Copyright:
© The Author(s) 2026. This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access page (https://us.sagepub.com/en-us/nam/open-access-at-sage).
PY - 2026
Y1 - 2026
N2 - This work investigates the response of a turbulent, technically premixed methane air flame to flow perturbations, with a focus on how fuel injector impedance affects system dynamics. The flame transfer function (FTF) is determined via system identification (SI) applied to time-series data from forced, high-fidelity large-eddy simulations (LES) and is validated against experimental mean flame shape and position. A Multiple Input, Single Output SI approach is used to separately identify the flame’s response to fluctuations in premixture velocity and equivalence ratio. The simulated premixture velocity FTF agrees well with the premixed experimental FTF, confirming that the simulations have a reasonable capture of flame dynamics. However, the airline fluctuation results show poorer agreement with the technically premixed measurements, indicating that injector impedance plays a significant role in those experiments. A low-order acoustic network model (LOM) is employed to evaluate the system transfer matrix, incorporating injector impedance along with the extracted transfer functions. This allows the injector impedance and the effects of fuel-line aperture and fuel-flow perturbations to be inferred. The results show that fuel injector impedance is significant even in the cold flow measurements, and that its combined effect with the flame’s response to fuel flow perturbations substantially influences the dynamics of the reacting case. These findings highlight the importance of ensuring injector acoustic stiffness across the full operating range in technically premixed systems, or alternatively, of characterizing the response to fuel flow perturbations and accounting for their influence on the measured flame dynamics.
AB - This work investigates the response of a turbulent, technically premixed methane air flame to flow perturbations, with a focus on how fuel injector impedance affects system dynamics. The flame transfer function (FTF) is determined via system identification (SI) applied to time-series data from forced, high-fidelity large-eddy simulations (LES) and is validated against experimental mean flame shape and position. A Multiple Input, Single Output SI approach is used to separately identify the flame’s response to fluctuations in premixture velocity and equivalence ratio. The simulated premixture velocity FTF agrees well with the premixed experimental FTF, confirming that the simulations have a reasonable capture of flame dynamics. However, the airline fluctuation results show poorer agreement with the technically premixed measurements, indicating that injector impedance plays a significant role in those experiments. A low-order acoustic network model (LOM) is employed to evaluate the system transfer matrix, incorporating injector impedance along with the extracted transfer functions. This allows the injector impedance and the effects of fuel-line aperture and fuel-flow perturbations to be inferred. The results show that fuel injector impedance is significant even in the cold flow measurements, and that its combined effect with the flame’s response to fuel flow perturbations substantially influences the dynamics of the reacting case. These findings highlight the importance of ensuring injector acoustic stiffness across the full operating range in technically premixed systems, or alternatively, of characterizing the response to fuel flow perturbations and accounting for their influence on the measured flame dynamics.
KW - Thermoacoustics
KW - compliant fuel injection
KW - flame transfer function
KW - large eddy simulation
KW - mixing transfer function
KW - system identification
KW - turbulent combustion
UR - https://www.scopus.com/pages/publications/105038207732
U2 - 10.1177/17568277261447889
DO - 10.1177/17568277261447889
M3 - Article
AN - SCOPUS:105038207732
SN - 1756-8277
JO - International Journal of Spray and Combustion Dynamics
JF - International Journal of Spray and Combustion Dynamics
ER -