English

The dynamics of liquid films, as described by the diffuse-interface model

Statistical Mechanics 2021-09-27 v4

Abstract

The dynamics of a thin layer of liquid, between a flat solid substrate and an infinitely-thick layer of saturated vapor, is examined. The liquid and vapor are two phases of the same fluid, governed by the diffuse-interface model. The substrate is maintained at a fixed temperature, but in the bulk of the fluid the temperature is allowed to vary. The slope ε\varepsilon of the liquid/vapor interface is assumed to be small, as is the ratio of its thickness to that of the film. Three asymptotic regimes are identified, depending on the vapor-to-liquid density ratio ρv/ρl\rho_{v}/\rho_{l}. If ρv/ρl1\rho_{v}/\rho_{l}\sim1 (which implies that the temperature is comparable, but not necessarily close, to the critical value), the evolution of the interface is driven by the vertical flow due to liquid/vapor phase transition, with the horizontal flow being negligible. In the limit ρv/ρl0\rho_{v}/\rho_{l}\rightarrow0, it is the other way around, and there exists an intermediate regime, ρv/ρlε4/3\rho_{v}/\rho_{l}\sim\varepsilon^{4/3}, where the two effects are of the same order. Only the ρv/ρl0\rho_{v}/\rho_{l}\rightarrow0 limit is mathematically similar to the case of incompressible (Navier--Stokes) liquids, whereas the asymptotic equations governing the other two regimes are of different types.

Keywords

Cite

@article{arxiv.2007.03351,
  title  = {The dynamics of liquid films, as described by the diffuse-interface model},
  author = {E. S. Benilov},
  journal= {arXiv preprint arXiv:2007.03351},
  year   = {2021}
}
R2 v1 2026-06-23T16:54:47.742Z