JOURNAL ARTICLE

Mechanism of Buoyant Turbulent Diffusion Flames

John L. de Ris

Year: 2013 Journal:   Procedia Engineering Vol: 62 Pages: 13-27   Publisher: Elsevier BV

Abstract

The paper addresses the basic combustion mechanism of buoyant turbulent diffusion flames with emphasis on flame generated turbulence. The vorticity equation and Kelvin's theorem show that the buoyant generation of vorticity and its dissipation within the flamelets drives the combustion of fuel and oxidant in buoyant turbulent flames, characteristic of fires. It is an example of a Rayleigh-Taylor instability mechanism characterized by a constant Rayleigh number. The mechanism explains why measured volumetric heat release rates and radiant fractions are constants and independent of the overall fire size. It conforms to the fundamental requirement that the volumetric heat release be proportional to p4/3 g2/3. The paper presents the cascades of vorticity as well as rotational and translational turbulent kinetic energies. A set of modified LES equations using the EDC concept are suggested for simulating buoyant turbulent diffusion flames that should yield mesh-size independent solutions.

Keywords:
Turbulent diffusion Turbulence Mechanics Vorticity Thermodynamics Diffusion Combustion Physics Instability Classical mechanics Meteorology Chemistry Vortex Physical chemistry

Metrics

42
Cited By
6.73
FWCI (Field Weighted Citation Impact)
26
Refs
0.96
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Fire dynamics and safety research
Physical Sciences →  Engineering →  Safety, Risk, Reliability and Quality
Combustion and flame dynamics
Physical Sciences →  Engineering →  Computational Mechanics
Fire effects on ecosystems
Physical Sciences →  Environmental Science →  Global and Planetary Change

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