An Asymptotic Analysis of Unsteady Diffusion Flames for Large Activation Energies
Open Access
- 1 September 1976
- journal article
- research article
- Published by Taylor & Francis in Combustion Science and Technology
- Vol. 14 (1-3) , 95-117
- https://doi.org/10.1080/00102207608946750
Abstract
The limit of large activation energy is studied for the process of simultaneous mixing and chemical reaction of two reactants undergoing a one-step irreversible Arrhenius reaction. Consideration is restricted to problems of the evolution type—like unsteady mixing and boundary-layer combustion—for which the solution is uniquely determined in terms of the initial conditions. The continuous transition from the nearly-frozen to the near-equilibrium regimes is described. The analysis uncovers the existence of: (i) An ignition regime, in which a mixing layer develops with only minor effects of the chemical reaction, until a thermal runaway occurs somewhere within the mixing region; at this location chemical equilibrium then is established rapidly, (ii) A deflagration regime, in which premixed flames originate from the ignition point and move through the mixing region to burn completely the reactant not in excess. And (iii) a diffusion-flame regime, in which a thin diffusion flame, that is established when the deflagration wave crosses the surface where the reactants are present in stoichiometric proportions, consumes the excess reactants that could not be burned by the premixed flame. This is accomplished by a process in which the reactants diffuse through a thick layer of reaction products. There exists experimental evidence to support this rather complex picture deduced theoretically.Keywords
This publication has 14 references indexed in Scilit:
- Kinetics and RegressionSIAM Journal on Applied Mathematics, 1971
- Asymptotic Analysis of Laminar Flame Propagation for General Lewis NumbersCombustion Science and Technology, 1970
- Flame Propagation in Layered Methane-Air SystemsCombustion Science and Technology, 1970
- On the multiplicity of steady states in boundary layer problems with surface reactionChemical Engineering Science, 1969
- Theory of laminar flame propagation with non-normal diffusionCombustion and Flame, 1969
- The Laminar Diffusion Flame behind a Blunt Body: a Constant-Pressure Oseen-flow ModelIMA Journal of Applied Mathematics, 1967
- Errata: "Theory of Electrostatic Double Probe Comprised of Two Parallel Plates"AIAA Journal, 1966
- Ignition and extinction in combustion of initially unmixed reactantsJournal of Fluid Mechanics, 1965
- The structure of the zone of diffusion controlled reactionChemical Engineering Science, 1963
- A flame zone model for chemical reaction in a laminar boundary layer with application to the injection of hydrogen-oxygen mixturesInternational Journal of Heat and Mass Transfer, 1963