Flame interactions in a stratified swirl burner: flame stabilization, combustion instabilities and beating oscillations
X. Han, D. Laera, D. Yang, C. Zhang, J. Wang, X. Hui, Y. Lin, A. S., Morgans, C. J. Sung

TL;DR
This study explores the complex interactions between pilot and main flames in a stratified swirl burner, revealing how different operating modes influence flame stability, oscillations, and thermoacoustic behaviors through experimental and numerical analyses.
Contribution
It provides new insights into flame interactions and oscillations in stratified swirl burners, combining experimental observations with LES simulations and acoustic analysis.
Findings
Flame shape transitions from V to M in pilot mode with oscillations.
Main flame lift-off occurs when pilot air is supplied, intensifying heat release.
Beating oscillations with dual frequencies are observed in stratified mode.
Abstract
The present article investigates the interactions between the pilot and main flames in a novel stratified swirl burner using both experimental and numerical methods. Experiments are conducted in a test rig operating at atmospheric conditions. The system is equipped with the BASIS (Beihang Axial Swirler Independently-Stratified) burner fuelled with premixed methane-air mixtures. To illustrate the interactions between the pilot and main flames, three operating modes are studied, where the burner works with: (i) only the pilot flame, (ii) only the main flame, and (iii) the stratified flame (with both the pilot and main flames). We found that: (1) In the pilot flame mode, the flame changes from V-shape to M-shape when the main stage is switched from closed to supplying a pure air stream. Strong oscillations in the M-shape flame are found due to the dilution of the main air to the pilot…
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