TY - JOUR
T1 - Faster flicker of buoyant diffusion flames by weakly rotatory flows
AU - Yang, Tao
AU - Zhang, Peng
PY - 2023/12
Y1 - 2023/12
N2 - Flickering buoyant diffusion methane flames in weakly rotatory flows were computationally and theoretically investigated. The prominent computational finding is that the flicker frequency nonlinearly increases with the nondimensional rotational intensity R (up to 0.24), which is proportional to the nondimensional circumferential circulation. This finding is consistent with the previous experimental observations that rotatory flows enhance flame flicker to a certain extent. Based on the vortex-dynamical understanding of flickering flames that the flame flicker is caused by the periodic shedding of buoyancy-induced toroidal vortices, a scaling theory is formulated for flickering buoyant diffusion flames in weakly rotatory flows. The theory predicts that the increase of flicker frequency ƒ obeys the scaling relation (ƒ- ƒ0) ∝ R2 , which agrees very well with the present computational results. In physics, the external rotatory flow enhances the radial pressure gradient around the flame, and the significant baroclinic effect ∇p × ∇ρ contributes an additional source for the growth of toroidal vortices so that their periodic shedding is faster. © 2023, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
AB - Flickering buoyant diffusion methane flames in weakly rotatory flows were computationally and theoretically investigated. The prominent computational finding is that the flicker frequency nonlinearly increases with the nondimensional rotational intensity R (up to 0.24), which is proportional to the nondimensional circumferential circulation. This finding is consistent with the previous experimental observations that rotatory flows enhance flame flicker to a certain extent. Based on the vortex-dynamical understanding of flickering flames that the flame flicker is caused by the periodic shedding of buoyancy-induced toroidal vortices, a scaling theory is formulated for flickering buoyant diffusion flames in weakly rotatory flows. The theory predicts that the increase of flicker frequency ƒ obeys the scaling relation (ƒ- ƒ0) ∝ R2 , which agrees very well with the present computational results. In physics, the external rotatory flow enhances the radial pressure gradient around the flame, and the significant baroclinic effect ∇p × ∇ρ contributes an additional source for the growth of toroidal vortices so that their periodic shedding is faster. © 2023, The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.
KW - Flicker frequency
KW - Flickering flame
KW - Laminar diffusion flame
KW - Toroidal vortex
KW - Weakly rotatory flow
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U2 - 10.1007/s00162-023-00671-0
DO - 10.1007/s00162-023-00671-0
M3 - RGC 21 - Publication in refereed journal
SN - 0935-4964
VL - 37
SP - 781
EP - 798
JO - Theoretical and Computational Fluid Dynamics
JF - Theoretical and Computational Fluid Dynamics
IS - 6
ER -