Hostname: page-component-848d4c4894-2pzkn Total loading time: 0 Render date: 2024-06-08T15:09:40.816Z Has data issue: false hasContentIssue false

Combustion theory: a report on Euromech 203

Published online by Cambridge University Press:  21 April 2006

J. F. Clarke
Affiliation:
Aerodynamics, Cranfield Institute of Technology, Bedford MK43 OAL
N. Riley
Affiliation:
School of Mathematics and Physics, University of East Anglia, Norwich NR4 7TJ

Abstract

The 203rd Euromech Colloquium, on developments in the theoretical modelling of homogeneous and heterogeneous combustion was held at Cranfield Institute of Technology from 2 to 4 December 1985. The emphasis of the meeting was on the ability of analytic, numerical and approximate methods to predict, or interpret, events which occur in the laboratory or in the field. There were forty-five participants in the Colloquium from six different countries.

Type
Research Article
Copyright
© 1986 Cambridge University Press

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Adler, J.Criticality criteria for thermal explosions.
Boddington, T., Gray, P. & Kay, S.Times to ignition in exothermic systems in steadily heated surroundings.
Champion, M., Deshaies, B., Joulin, G. & Kinoshita, K.Initiation of lean flames of heavy gaseous fuel; seeking for limiting mechanisms.
Clarke, J. F., Kassoy, D. R. & Riley, N.Detonation wave initiation by rapid energy deposition at a confining boundary.
Clavin, P., Fife, P. & Nicolaenko, B.Competing-reaction flames.
Cooperr, S. & Nettleton, M. A.The ignition of pulverised coal flames.
David, T., Bloor, M. I. G., Dixon-Lewis, G. & Gaskell, P. H.Direct coordinate expansionsfor counterflow diffusion flames.
Deshaies, B. & Joulin, G.A tentative sufficient criterion for deflagration to detonation transition.
Dold, J. W.The role of thermal runaway in the ignition process.
Dold, J. W. 1979 Ph.D. thesis, Cranfield Institute of Technology.
Dold, J. W. 1985 Q. J Mach. Appl. Maths 38, 361.
Ebert, F. & Schöffel, S. U.Calculation of the flow-field caused by shock wave and deflagration interaction.
Joulin, G.Radiation-affected dynamics of spherical flames in particle-laden gaseous mixtures.
Kapila, A. K. 1980 SIAM J. Appl. Maths 39, 21.
Kassoy, D. R. & P Oland, J. 1980 SIAM J. Appl. Maths 9, 412.
Kassoy, D. R., Bebernes, J. & Clarke, J. F.The thermal-explosion solution.
Kordylewski, W., Rybak, W. & Zembrzuski, M.Dynamics of coal particle ignition.
Lintan, A. & Higuera, F. J.Droplet vaporization in a stagnant hot atmosphere without free orforced convection.
LinTan, A.The ozone flame.
Mcistosh, A. C.Flame—acoustic coupling.
Moss, J. B.Turbulence-chemistry interaction effects on pre-mixed flame propagation.
Norbury, J.Modelling combustion in a porous medium.
Peters, N. & Donnerhack, S.Numerical analysis of a systematically reduced reaction schemefor methane flames.
Philips, H.Flame acceleration in vapour-cloud explosions.
Rogg, B.Application of the laminar flamelet model to turbulent jet diffusion flames with complex chemistry.
Stuart, A.Travelling combustion waves in a porous medium.
Taylor, P. H.On the role of fast-flame propagation in congested regions.
Toro, E. F. & Fitt, A. D.Theoretical and numerical aspects of the gas dynamics associated with the combustion of a solid propellant.
Tsuji, H. & Yamaoka, I. 1971 Thirteenth Symp. (International) on Combustion (Combustion Institute, Pittsburgh), p.723.
Williams, F. A. Combustion Theory, 1st dn, 1965, Academic: 2nd edn, 1985,Benjamin/Cummings.