Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames

The generation and turbulent transport of temporal equivalence ratio fluctuations in a swirl combustor are experimentally investigated and compared to a one-dimensional transport model. These fluctuations are generated by acoustic perturbations at the fuel injector and play a crucial role in the fee...

Full description

Bibliographic Details
Main Authors: Vincent Kather, Finn Lückoff, Christian O. Paschereit, Kilian Oberleithner
Format: Article
Language:English
Published: SAGE Publishing 2021-06-01
Series:International Journal of Spray and Combustion Dynamics
Online Access:https://doi.org/10.1177/17568277211015544
id doaj-a0c745931b634c30bb5d47e18e4edcdd
record_format Article
spelling doaj-a0c745931b634c30bb5d47e18e4edcdd2021-08-11T21:33:51ZengSAGE PublishingInternational Journal of Spray and Combustion Dynamics1756-82852021-06-011310.1177/17568277211015544Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flamesVincent KatherFinn LückoffChristian O. PaschereitKilian OberleithnerThe generation and turbulent transport of temporal equivalence ratio fluctuations in a swirl combustor are experimentally investigated and compared to a one-dimensional transport model. These fluctuations are generated by acoustic perturbations at the fuel injector and play a crucial role in the feedback loop leading to thermoacoustic instabilities. The focus of this investigation lies on the interplay between fuel fluctuations and coherent vortical structures that are both affected by the acoustic forcing. To this end, optical diagnostics are applied inside the mixing duct and in the combustion chamber, housing a turbulent swirl flame. The flame was acoustically perturbed to obtain phase-averaged spatially resolved flow and equivalence ratio fluctuations, which allow the determination of flux-based local and global mixing transfer functions. Measurements show that the mode-conversion model that predicts the generation of equivalence ratio fluctuations at the injector holds for linear acoustic forcing amplitudes, but it fails for non-linear amplitudes. The global (radially integrated) transport of fuel fluctuations from the injector to the flame is reasonably well approximated by a one-dimensional transport model with an effective diffusivity that accounts for turbulent diffusion and dispersion. This approach however, fails to recover critical details of the mixing transfer function, which is caused by non-local interaction of flow and fuel fluctuations. This effect becomes even more pronounced for non-linear forcing amplitudes where strong coherent fluctuations induce a non-trivial frequency dependence of the mixing process. The mechanisms resolved in this study suggest that non-local interference of fuel fluctuations and coherent flow fluctuations is significant for the transport of global equivalence ratio fluctuations at linear acoustic amplitudes and crucial for non-linear amplitudes. To improve future predictions and facilitate a satisfactory modelling, a non-local, two-dimensional approach is necessary.https://doi.org/10.1177/17568277211015544
collection DOAJ
language English
format Article
sources DOAJ
author Vincent Kather
Finn Lückoff
Christian O. Paschereit
Kilian Oberleithner
spellingShingle Vincent Kather
Finn Lückoff
Christian O. Paschereit
Kilian Oberleithner
Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
International Journal of Spray and Combustion Dynamics
author_facet Vincent Kather
Finn Lückoff
Christian O. Paschereit
Kilian Oberleithner
author_sort Vincent Kather
title Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
title_short Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
title_full Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
title_fullStr Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
title_full_unstemmed Interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
title_sort interaction of equivalence ratio fluctuations and flow fluctuations in acoustically forced swirl flames
publisher SAGE Publishing
series International Journal of Spray and Combustion Dynamics
issn 1756-8285
publishDate 2021-06-01
description The generation and turbulent transport of temporal equivalence ratio fluctuations in a swirl combustor are experimentally investigated and compared to a one-dimensional transport model. These fluctuations are generated by acoustic perturbations at the fuel injector and play a crucial role in the feedback loop leading to thermoacoustic instabilities. The focus of this investigation lies on the interplay between fuel fluctuations and coherent vortical structures that are both affected by the acoustic forcing. To this end, optical diagnostics are applied inside the mixing duct and in the combustion chamber, housing a turbulent swirl flame. The flame was acoustically perturbed to obtain phase-averaged spatially resolved flow and equivalence ratio fluctuations, which allow the determination of flux-based local and global mixing transfer functions. Measurements show that the mode-conversion model that predicts the generation of equivalence ratio fluctuations at the injector holds for linear acoustic forcing amplitudes, but it fails for non-linear amplitudes. The global (radially integrated) transport of fuel fluctuations from the injector to the flame is reasonably well approximated by a one-dimensional transport model with an effective diffusivity that accounts for turbulent diffusion and dispersion. This approach however, fails to recover critical details of the mixing transfer function, which is caused by non-local interaction of flow and fuel fluctuations. This effect becomes even more pronounced for non-linear forcing amplitudes where strong coherent fluctuations induce a non-trivial frequency dependence of the mixing process. The mechanisms resolved in this study suggest that non-local interference of fuel fluctuations and coherent flow fluctuations is significant for the transport of global equivalence ratio fluctuations at linear acoustic amplitudes and crucial for non-linear amplitudes. To improve future predictions and facilitate a satisfactory modelling, a non-local, two-dimensional approach is necessary.
url https://doi.org/10.1177/17568277211015544
work_keys_str_mv AT vincentkather interactionofequivalenceratiofluctuationsandflowfluctuationsinacousticallyforcedswirlflames
AT finnluckoff interactionofequivalenceratiofluctuationsandflowfluctuationsinacousticallyforcedswirlflames
AT christianopaschereit interactionofequivalenceratiofluctuationsandflowfluctuationsinacousticallyforcedswirlflames
AT kilianoberleithner interactionofequivalenceratiofluctuationsandflowfluctuationsinacousticallyforcedswirlflames
_version_ 1721210613015773184