Conserved Dynamics and Interface Roughening in Spontaneous Imbibition : A Critical Overview
arXiv:cond-mat/0008459 · doi:10.1007/s100510051174
Abstract
Imbibition phenomena have been widely used experimentally and theoretically to study the kinetic roughening of interfaces. We critically discuss the existing experiments and some associated theoretical approaches on the scaling properties of the imbibition front, with particular attention to the conservation law associated to the fluid, to problems arising from the actual structure of the embedding medium, and to external influences such as evaporation and gravity. Our main conclusion is that the scaling of moving interfaces includes many crossover phenomena, with competition between the average capillary pressure gradient and its fluctuations setting the maximal lengthscale for roughening. We discuss the physics of both pinned and moving interfaces and the ability of the existing models to account for their properties.
9 pages, Latex
Cited by in corpus (14)
- Imbibition in Disordered Media
- Soft matter in hard confinement: phase transition thermodynamics, structure, texture, diffusion and flow in nanoporous media - topical review
- Anomalous Front Broadening During Spontaneous Imbibition in a Matrix with Elongated Pores
- Kinetic Roughening in Slow Combustion of Paper
- Capillary rise dynamics of liquid hydrocarbons in mesoporous silica as explored by gravimetry, optical and neutron imaging: Nano-rheology and determination of pore size distributions from the shape of imbibition fronts
- Interface roughening in Hele--Shaw flows with quenched disorder: experimental and theoretical results
- Scaling theory for spontaneous imbibition in random networks of elongated pores
- Experiments of Interfacial Roughening in Hele-Shaw Flows with Weak Quenched Disorder
- Intrinsic versus super-rough anomalous scaling in spontaneous imbibition
- Time dependent couplings and crossover length scales in non-equilibrium surface roughening
- Dynamics and Kinetic Roughening of Interfaces in Two-Dimensional Forced Wetting
- Influence of Disorder Strength on Phase Field Models of Interfacial Growth
- Vortex nucleation and flux front propagation in type II superconductors
- Comment on: `Pipe Network Model for Scaling of Dynamic Interfaces in Porous Media'