Abstract
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.
| Original language | English |
|---|---|
| Pages (from-to) | 781-798 |
| Journal | Theoretical and Computational Fluid Dynamics |
| Volume | 37 |
| Issue number | 6 |
| Online published | 18 Jul 2023 |
| DOIs | |
| Publication status | Published - Dec 2023 |
Research Keywords
- Flicker frequency
- Flickering flame
- Laminar diffusion flame
- Toroidal vortex
- Weakly rotatory flow
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