Title of article :
Molecular dynamics simulation of the equilibrium liquid–vapor interphase with solidification
Author/Authors :
Gu، نويسنده , , Kai and Watkins، نويسنده , , Charles B. and Koplik، نويسنده , , Joel، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2010
Abstract :
The equilibrium structure of the finite, interphase interfacial region that exists between a liquid film and a bulk vapor is resolved by molecular dynamics simulation. Argon systems are considered for a temperature range that extends below the melting point. Physically consistent procedures are developed to define the boundaries between the interphase and the liquid and vapor phases. The procedures involve counting of neighboring molecules and comparing the results with boundary criteria that permit the boundaries to be precisely established. Two-dimensional radial distribution functions at the liquid and vapor boundaries and within the interphase region demonstrate the physical consistency of the boundary criteria and the state of transition within the region. The method developed for interphase boundary definitions can be extended to nonequilibrium systems. Spatial profiles of macroscopic properties across the interphase region are presented. A number of interfacial thermodynamic properties and profile curve-fit parameters are tabulated, including evaporation/condensation coefficients determined from molecular flux statistics. The evaporation/condensation coefficients away from the melting point compare more favorably with transition state theory than those of previous simulations. Near the melting point, transition theory approximations are less valid and the present results differ from the theory. The effects of film substrate wetting on evaporation/condensation coefficients are also presented.
Keywords :
Equilibrium molecular dynamics , Evaporation coefficient , Condensation coefficient , Liquid–vapor interface
Journal title :
Fluid Phase Equilibria
Journal title :
Fluid Phase Equilibria