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Edge-stabilized rotating flames in a circular Hele-Shaw cell
Phys. Rev. Fluids 11, 083201 – Published 10 August, 2026
DOI: https://doi.org/10.1103/rs7l-whwf
Abstract
In this study, we report direct experimental observations of self-sustaining -air rotating flames formed spontaneously in an unheated, open, circular Hele-Shaw cell. These flames are observed under fuel-rich conditions and exhibit stable traveling-wave patterns, with edge velocities that can significantly exceed the nominal flame speed of the unburned mixture. Planar laser-induced fluorescence (PLIF) measurements across the central plane reveal that the flame front consists of a bibrachial structure, with a diffusion branch gliding along the side edges of the cell and a premixed branch extending into the interior. Complementary numerical simulations suggest that the formation of rotating flames is driven by a dynamic balance between local flame speed and unburned-gas velocity near the cell edges, where both wall heat loss and flow expansion play critical roles in stabilizing the rotation pattern. A parametric study is conducted for various equivalence ratios, flow rates, and gap distances, from which the regime diagrams of flame modes and rotation frequencies are obtained. At low flow rates, the rotating state is characterized by a single rotating flame wave, whose rotation frequency increases with flow rate. For this type of flame, a semiempirical model is established to predict their rotation frequencies and shapes as functions of mass flow rate and surface temperature. At elevated flow rates, multiple rotating waves appear with approximately equal azimuthal spacing, and the product of the wave number and rotation frequency increases with flow rate. Mode transition from rotating flames to steady ring-shaped flames anchored at the burner edges occurs at sufficiently high flow rates, while at sufficiently low flow rates, flame extinction occurs due to thermal quenching. These findings can provide useful guidance for the advancement of microcombustion technologies.
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References (24)
- J. E, B. Luo, D. Han, J. Chen, G. Liao, F. Zhang, and J. Ding, A comprehensive review on performance improvement of micro energy mechanical system: Heat transfer, micro combustion and energy conversion, Energy 239, 122509 (2022).
- A. C. Fernandez-Pello, Micropower generation using combustion: Issues and approaches, Proc. Combust. Inst. 29, 883 (2002).
- K. Maruta, Micro and mesoscale combustion, Proc. Combust. Inst. 33, 125 (2011).
- D. Martínez-Ruiz, F. Veiga-López, D. Fernández-Galisteo, V. N. Kurdyumov, and M. Sánchez-Sanz, The role of conductive heat losses on the formation of isolated flame cells in Hele-Shaw chambers, Combust. Flame 209, 187 (2019).
- E. Al Sarraf, C. Almarcha, J. Quinard, B. Radisson, B. Denet, and P. Garcia-Ybarra, Darrieus–Landau instability and Markstein numbers of premixed flames in a Hele-Shaw cell, Proc. Combust. Inst. 37, 1783 (2019).
- S. Shen, J. Wongwiwat, and P. Ronney, Flame propagation in quasi-2D channels: Stability, rates and scaling, in AIAA Scitech 2019 Forum (AIAA, San Diego, California, 2019), p. 2365.
- E. A. Sarraf, C. Almarcha, J. Quinard, B. Radisson, and B. Denet, Quantitative analysis of flame instabilities in a Hele-Shaw burner, Flow, Turbul. Combust. 101, 851 (2018).
- J. Daou, Effect of Taylor dispersion on the thermo-diffusive instabilities of flames in a Hele–Shaw burner, Combust. Theor. Model. 25, 765 (2021).
- F. Veiga-López, D. Martínez-Ruiz, E. Fernández-Tarrazo, and M. Sánchez-Sanz, Experimental analysis of oscillatory premixed flames in a Hele-Shaw cell propagating towards a closed end, Combust. Flame 201, 1 (2019).
- S. Kumar, K. Maruta, and S. Minaev, On the formation of multiple rotating Pelton-like flame structures in radial microchannels with lean methane–air mixtures, Proc. Combust. Inst. 31, 3261 (2007).
- S. Kumar, K. Maruta, and S. Minaev, Pattern formation of flames in radial microchannels with lean methane-air mixtures, Phys. Rev. E 75, 016208 (2007).
- A. Fan, S. Minaev, E. Sereshchenko, R. Fursenko, S. Kumar, W. Liu, and K. Maruta, Experimental and numerical investigations of flame pattern formations in a radial microchannel, Proc. Combust. Inst. 32, 3059 (2009).
- A. Fan, J. Wan, K. Maruta, H. Nakamura, H. Yao, and W. Liu, Flame dynamics in a heated meso-scale radial channel, Proc. Combust. Inst. 34, 3351 (2013).
- R. Zhou, D. Wu, and J. Wang, Progress of continuously rotating detonation engines, Chin. J. Aeronaut. 29, 15 (2016).
- S. S. Minaev, E. V. Sereshchenko, R. V. Fursenko, A. Fan, and K. Maruta, Splitting flames in a narrow channel with a temperature gradient in the walls, Combust., Explosion, Shock Waves 45, 119 (2009).
- S. Minaev, R. Fursenko, E. Sereshchenko, A. Fan, and S. Kumar, Oscillating and rotating flame patterns in radial microchannels, Proc. Combust. Inst. 34, 3427 (2013).
- J. Chang and X. Kang, Numerical investigations on flame pattern formations for premixed methane/air combustion in a radial microchannel, Proc. Combust. Inst. 40, 105598 (2024).
- H. Wang, Z. Yan, Y. Zhao, and S. Wang, On the self-excited instabilities of premixed swirl flames near blow-off limits – An experimental study using simultaneous measurements of thermal boundary conditions and core flow scalar fields, Combust. Flame 277, 114171 (2025).
- I. H. Bockhorn, Implementation and validation of a solver for direct numerical simulations of turbulent reacting flows in OpenFOAM, Ph.D. thesis, Karlsruhe Institute of Technology, 2012.
- T. Zirwes, M. Sontheimer, F. Zhang, A. Abdelsamie, F. E. H. Pérez, O. T. Stein, H. G. Im, A. Kronenburg, and H. Bockhorn, Assessment of numerical accuracy and parallel performance of OpenFOAM and its reacting flow extension ebiDNSFoam, Flow, Turbul. Combust. 111, 567 (2023).
- A. Kazakov and M. Frenklach, Reduced reaction sets based on GRI-Mech 1.2, University of California at Berkeley, Berkeley, CA, http://combustion.berkeley.edu/drm/ (1994).
- D. G. Goodwin, H. K. Moffat, I. Schoegl, R. L. Speth, and B. W. Weber, Cantera: An object-oriented software toolkit for chemical kinetics, thermodynamics, and transport processes, https://www.cantera.org (2024), version 3.1.0.
- D. Rettenmaier, D. Deising, Y. Ouedraogo, E. Gjonaj, H. De Gersem, D. Bothe, C. Tropea, and H. Marschall, Load balanced 2D and 3D adaptive mesh refinement in OpenFOAM, SoftwareX 10, 100317 (2019).
- X. Nie and S. Wang, Dataset for “Edge-stabilized rotating flames in a circular Hele-Shaw cell” [Dataset], Zenodo, 2026, https://doi.org/10.5281/zenodo.19183124.