COARSENING OF RANDOM INTERFACES IN THE SPINODAL DECOMPOSITION OF A BINARY-FLUID

Authors
Citation
V. Kumaran, COARSENING OF RANDOM INTERFACES IN THE SPINODAL DECOMPOSITION OF A BINARY-FLUID, The Journal of chemical physics, 108(7), 1998, pp. 3038-3044
Citations number
10
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
108
Issue
7
Year of publication
1998
Pages
3038 - 3044
Database
ISI
SICI code
0021-9606(1998)108:7<3038:CORIIT>2.0.ZU;2-J
Abstract
The growth of random interfaces during the late stage spinodal decompo sition fora near symmetric quench of a binary fluid is analyzed. Inert ial effects are neglected, and the motion of the interface is determin ed by a balance between the surface tension, which tends to reduce the curvature, and the viscous stresses in the fluid. The interface is de scribed by an ''area distribution function'' A(K,t), defined so that A (K,t)dKdx is the area of the interface with curvature in the interval dK about K in the volume dr at time t. Here, K = (K-1(2) + K-2(2))(1/2 ) is the magnitude of the curvature, and K-1 and K-2 are the principal curvatures. There is a change in the area distribution function due t o a change in the curvature, and due to the tangential compression of the interface. Phenomenological relations for the change in curvature and surface area are obtained using the assumption that the only lengt h scale affecting the dynamics of the interface at a point is the radi us of curvature at that point. These relations are inserted in the con servation equation for the interface, and a similarity solution is obt ained for the area distribution function. This solution indicates that the area of the interface decreases proportional to t(-1) in the late stages of coarsening, and the mean curvature also decreases proportio nal to t(-1). The effect of the motion of the interface on the interfa cial concentration profile and interfacial energy is analyzed using a perturbation analysis. The diffusion equation for the concentration in the interfacial region contains an additional source term due to the convective transport of material caused by the motion of the interface , and this causes a correction to the equilibrium concentration profil e of the interface. The excess interfacial energy due to the nonequili brium motion of the interface is calculated using the Cahn-Hilliard sq uare gradient free energy for a near-critical quench. It is found that the variation in the concentration causes an increase in the interfac ial energy which is proportional to the curvature K of the interface. (C) 1998 American Institute of Physics.