To read this content please select one of the options below:

A multiphase formulation for two phase flows

E. Daniel (IUSTI/SETT, Equipe Ecoulements Diphasiques et Réactifs, UA—CNRS 1168, Université de Provence, Centre de St‐Jérôme, case 321, 13397 Marseille Cedex 20, France)
R. Saurel (IUSTI/SETT, Equipe Ecoulements Diphasiques et Réactifs, UA—CNRS 1168, Université de Provence, Centre de St‐Jérôme, case 321, 13397 Marseille Cedex 20, France)
M. Larini (IUSTI/SETT, Equipe Ecoulements Diphasiques et Réactifs, UA—CNRS 1168, Université de Provence, Centre de St‐Jérôme, case 321, 13397 Marseille Cedex 20, France)
J.C. Loraud (IUSTI/SETT, Equipe Ecoulements Diphasiques et Réactifs, UA—CNRS 1168, Université de Provence, Centre de St‐Jérôme, case 321, 13397 Marseille Cedex 20, France)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 1 March 1994

143

Abstract

This paper investigates the multi‐phase behaviour of droplets injected into a nozzle at two separate wall locations. The physical features of the droplets (rate of mass, density and radius) at each injector location are identical. This system can be described by a two‐phase Eulerian—Eulerian approach that yields classical systems of equations: three for the gaseous phase and three for the dispersed droplet phase. An underlying assumption in the two phase model is that no interaction occurs between droplets. The numerical solution of the model (using the MacCormack scheme) indicates however that the opposite jets do interact to form one jet. This inconsistency is overcome in the current paper by associating the droplets from a given injection location with a separate phase and subsequently solving equations describing a multiphase system (here, three‐phase system). Comparison of numerical predications between the two‐phase and the multiphase model shows significantly different results. In particular the multiphase model shows no jet interaction.

Keywords

Citation

Daniel, E., Saurel, R., Larini, M. and Loraud, J.C. (1994), "A multiphase formulation for two phase flows", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 4 No. 3, pp. 269-280. https://doi.org/10.1108/EUM0000000004107

Publisher

:

MCB UP Ltd

Copyright © 1994, MCB UP Limited

Related articles