Mesoscopic modeling of a two-phase flow in the presence of boundaries: the Contact Angle
arXiv:nlin/0602008 · doi:10.1103/PhysRevE.74.021509
Abstract
We present a mesoscopic model, based on the Boltzmann Equation, for the interaction between a solid wall and a non-ideal fluid. We present an analytic derivation of the contact angle in terms of the surface tension between the liquid-gas, the liquid-solid and the gas-solid phases. We study the dependency of the contact angle on the two free parameters of the model, which determine the interaction between the fluid and the boundaries, i.e. the equivalent of the wall density and of the wall-fluid potential in Molecular Dynamics studies. We compare the analytical results obtained in the hydrodynamical limit for the density profile and for the surface tension expression with the numerical simulations. We compare also our two-phase approach with some exact results for a pure hydrodynamical incompressible fluid based on Navier-Stokes equations with boundary conditions made up of alternating slip and no-slip strips. Finally, we show how to overcome some theoretical limitations connected with a discretized Boltzmann scheme and we discuss the equivalence between the surface tension defined in terms of the mechanical equilibrium and in terms of the Maxwell construction.
29 pages, 12 figures
References in corpus (2)
Cited by in corpus (11)
- Slip flow over structured surfaces with entrapped microbubbles
- Spontaneous Breakdown of Superhydrophobicity
- Contact line dynamics in binary lattice Boltzmann simulations
- Lattice Boltzmann simulations in microfluidics: probing the no-slip boundary condition in hydrophobic, rough, and surface nanobubble laden microchannels
- Dynamics of the spontaneous breakdown of superhydrophobicity
- Capillary filling with pseudo-potential binary Lattice-Boltzmann model
- Evidence of thin-film precursors formation in hydrokinetic and atomistic simulations of nano-channel capillary filling
- Lattice Boltzmann method for inhomogeneous fluids
- On the effect of surfactant adsorption and viscosity change on apparent slip in hydrophobic microchannels
- Front pinning in capillary filling of chemically coated channels
- Exact Hydrodynamics of the Lattice BGK Equation