In this work we investigate the dynamical properties of a mixture of mutually interacting spherical molecules of different masses and sizes. From an analysis of the microscopic laws governing the motion of the molecules we derive a set of non-local self-consistent equations for the singlet phase-space distribution functions. The theory is shown to reproduce the hydrodynamic equations for the densities of each species, the total momentum and the local temperature. The non-ideal gas interaction term is separated into a contribution due to the repulsive part, which is treated by means of the revised Enskog theory for hard spheres, and an attractive contribution treated within the random phase approximation. The present formulation accounts for...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
In this work we investigate the dynamical properties of a mixture of mutually interacting spherical ...
In this work we investigate the dynamical properties of a mixture of mutually interacting spherical ...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
By combining methods of kinetic and density functional theory, we present a description of molecular...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
By combining methods of kinetic and density functional theory, we present a description of molecular...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
In this work we investigate the dynamical properties of a mixture of mutually interacting spherical ...
In this work we investigate the dynamical properties of a mixture of mutually interacting spherical ...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
We consider the properties of a one-dimensional fluid of Brownian inertial hard-core particles, whos...
By combining methods of kinetic and density functional theory, we present a description of molecular...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
By combining methods of kinetic and density functional theory, we present a description of molecular...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
We study the dynamics of a colloidal fluid in the full position-momentum phase space, including hydr...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...
Starting from the Kramers equation for the phase-space dynamics of the N-body probability distributi...