Thin-flame theory for a fuel droplet in slow viscous flow

Author:

Fendell Francis E.,Sprankle Maureen L.,Dodson David S.

Abstract

The equilibrium burning of a spherical drop of pure non-gaseous fuel in a slow convective flow of hot oxidant is examined for Lewis number unity. A Stokes or Oseen flow with modified boundary conditions to permit mass transfer at the drop surface describes the velocity field. The method of inner and outer expansions is then adopted to describe the thermal and mass-fraction profiles under the model of a direct one-step irreversible indefinitely fast chemical reaction. The thin-flame position and surface mass-transfer rate, both functions of polar angle as well as radial position when convection is added to the conventional diffusive transport, are furnished in terms of the Peclet number. It is found that the interaction of the perturbational free-streaming with the asymmetric vaporization it induces can lead to drag coefficients in excess of the Stokes value.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference8 articles.

1. Acrivos, A. & Taylor, T. D. 1962 Phys. Fluids 5,38.

2. Proudman, I. & Pearson, J. R. A. 1957 J. Fluid Mech. 2,23.

3. Williams, F. A. 1965 Combustion Theory , pp.9–16,37–58.Reading, Massachusetts:Addison-Wesley.

4. Lamb, H. 1945 Hydrodynamics (6th edn), pp.594–617.New York:Dover.

5. Burke, S. P. & Schumann, T. E. W. 1928 Industr. Engng Chem. 20,99.

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