Scinovex
articleTop 1% cited

Direct determination of phase coexistence properties of fluids by Monte Carlo simulation in a new ensemble

Molecular Physics · 1987 · Vol. 61(4) · pp. 813–826
Athanassios Z. Panagiotopoulos

Abstract

A methodology is presented for Monte Carlo simulation of fluids in a new ensemble that can be used to obtain phase coexistence properties of multicomponent systems from a single computer experiment. The method is based on performing a simulation simultaneously in two distinct physical regions of generally different densities and compositions. Three types of perturbations are performed, a random displacement of molecules that ensures equilibrium within each region, an equal and opposite change in the volume of the two regions that results in equality of pressures, and random transfers of molecules that equalize the chemical potentials of each component in the two regions. The method is applied to the calculation of the liquid-gas coexistence envelope for the pure Lennard-Jones (6, 12) fluid for several reduced temperatures from the vicinity of the triple point to close to the critical point (T* = 0·75 to T* = 1·30). Good overall agreement with previously available literature results is obtained, with some deviations at the extremes of this temperature range.

Phase Equilibria and ThermodynamicsAdvanced Chemical Physics StudiesMaterial Dynamics and PropertiesMonte Carlo methodStatistical physicsMonte Carlo molecular modelingDynamic Monte Carlo methodPhase (matter)Monte Carlo method in statistical physicsHybrid Monte CarloPhysicsMarkov chain Monte CarloMathematics
Citations
1,964
FWCI
22.63
field-weighted impact
References
17
Percentile
100%
vs. same field & year
Citations per year
Cited by
References
Equation of State Calculations by Fast Computing Machines
The Journal of Chemical Physics · 1953 · 36,613 citations
Equation of state for the Lennard-Jones fluid
Molecular Physics · 1979 · 831 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.