Laminar condensation on a moving drop. Part 1. Singular perturbation technique

Author:

Chung J. N.,Ayyaswamy P. S.,Sadhal S. S.

Abstract

In this paper, laminar condensation on a spherical drop in a forced flow is investigated. The drop experiences a strong, radial, condensation-induced velocity while undergoing slow translation. In view of the high condensation velocity, the flow field, although the drop experiences slow translation, is not in the Stokes-flow regime. The drop environment is assumed to consist of a mixture of saturated steam (condensable) and air (non-condensable). The study has been carried out in two different ways. In Part 1 the continuous phase is treated as quasi-steady and the governing equations for this phase are solved through a singular perturbation technique. The transient heat-up of the drop interior is solved by the series-truncation numerical method. The solution for the total problem is obtained by matching the results for the continuous and dispersed phases. In Part 2 both the phases are treated as fully transient and the entire set of coupled equations are solved by numerical means. Validity of the quasi-steady assumption of Part 1 is discussed. Effects due to the presence of the non-condensable component and of the drop surface temperature on transport processes are discussed in both parts. A significant contribution of the present study is the inclusion of the roles played by both the viscous and the inertial effects in the problem treatment.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference9 articles.

1. Chung, J. N. , Ayyaswamy, P. S. & Sadhal, S. S. 1984 Laminar condensation on a moving drop. Part 2. Numerical solutions J. Fluid Mech. 139,131–144.

2. Chung, J. N. & Ayyaswamy, P. S. 1981a Laminar condensation heat and mass transfer to a moving drop AIChE J. 27,372–377.

3. Dennis, S. C. R. , Walker, J. D. A. & Hudson, J. D. 1973 Heat transfer from a sphere at low Reynolds numbers J. Fluid Mech. 60,273–283.

4. Fendell, F. E. , Sprankle, M. L. & Dodson, D. S. 1966 Thin-flame theory for a fuel droplet in slow viscous flow J. Fluid Mech. 26,267–280.

5. Yang, J. W. 1973 Laminar film condensation on a sphere.Trans. ASME C: J. Heat Transfer 95,174–174.

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