Mixing of a two-phase fluid by cavity flow
- 1 April 1996
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 53 (4) , 3832-3840
- https://doi.org/10.1103/physreve.53.3832
Abstract
Interface stretching during mixing of a two-phase fluid in shear flow is investigated numerically by introducing a mesoscopic description of the fluid. The classical infinitely thin boundary of separation between the two phases is replaced by a transition region of small but finite width, across which the order parameter of the two-phase fluid changes continuously. We consider the case of a conserved scalar order parameter and a fluid velocity that satisfies a modified Navier-Stokes equation that includes an explicit coupling term to the order parameter. In the macroscopic limit of a very thin interface, this coupling term gives rise to capillary forces. We focus on the limit of low Reynolds number flow and compute the interface stretching as a function of time for a range of parameters of the fluid. At early times and small coupling, our calculation agrees with the classical case of a material line passively advected by the flow. At later times, the interface stretching is seen to reach a maximum as capillary forces and diffusive relaxation of the order parameter become dominant.Keywords
This publication has 18 references indexed in Scilit:
- Directional solidification in two and three dimensionsPhysical Review Letters, 1993
- Thermodynamically-consistent phase-field models for solidificationPhysica D: Nonlinear Phenomena, 1993
- Spinodal decomposition in binary fluids: Effects of hydrodynamic interactionsPhysical Review A, 1991
- Large fluctuations in polymer solutions under shearPhysical Review Letters, 1989
- Phase-field methods for interfacial boundariesPhysical Review B, 1986
- Kinetics of fluctuations for systems undergoing phase transitions - interfacial approachPhysica A: Statistical Mechanics and its Applications, 1983
- Light scattering by critical fluids under shear flowAnnals of Physics, 1981
- Nonequilibrium steady state of critical fluids under shear flow: A renormalization group approachAnnals of Physics, 1979
- Theory of dynamic critical phenomenaReviews of Modern Physics, 1977
- Renormalization-group treatment of the critical dynamics of the binary-fluid and gas-liquid transitionsPhysical Review B, 1976