We propose a fast spectral method for solving the generalized Enskog equation for dense gases. For elastic collisions, the method solves the Enskog collision operator with a computational cost of O(Md-1Nd logN), where d is the dimension of the velocity space, and Md-1 and Nd are the number of solid angle and velocity space discretizations, respectively. For inelastic collisions, the cost is N times higher. The accuracy of this fast spectral method is assessed by comparing our numerical results with analytical solutions of the spatially homogeneous relaxation of heated granular gases. We also compare our results for force driven Poiseuille flow and Fourier flow with those from molecular dynamics and Monte Carlo simulations. Although it is ph...
The Navier-Stokes transport coefficients for a model of a confined quasi-two-dimensional granular ga...
The Enskog equation is solved by a numerical method which combines finite difference discretization ...
In this paper we extend the spectral method developed in [29, 30] to the case of the inelastic Bolt...
AbstractWe propose a fast spectral method for solving the generalized Enskog equation for dense gase...
We propose a fast spectral method for solving the generalized Enskog equation for dense gases. For e...
A fast spectral method is proposed for solving the generalized Enskog equation for dense gases. For ...
When the average intermolecular distance is comparable to the size of gas molecules, the Boltzmann e...
AbstractNormal shock profiles in a dense hard sphere gas are obtained by solving numerically the Ens...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Enskog-Boltzmann equation for a homogeneous freely evolving system of smooth hard disks collidin...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
The hydrodynamic equation governing the homogeneous time evolution of the temperature in a model of ...
Normal shock profiles a dense hard sphere gas are obtained by solving numerically the Enskog kinetic...
A kinetic model is proposed for the nonequilibrium flow of dense gases composed of hard sphere molec...
The Navier-Stokes transport coefficients for a model of a confined quasi-two-dimensional granular ga...
The Enskog equation is solved by a numerical method which combines finite difference discretization ...
In this paper we extend the spectral method developed in [29, 30] to the case of the inelastic Bolt...
AbstractWe propose a fast spectral method for solving the generalized Enskog equation for dense gase...
We propose a fast spectral method for solving the generalized Enskog equation for dense gases. For e...
A fast spectral method is proposed for solving the generalized Enskog equation for dense gases. For ...
When the average intermolecular distance is comparable to the size of gas molecules, the Boltzmann e...
AbstractNormal shock profiles in a dense hard sphere gas are obtained by solving numerically the Ens...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Enskog-Boltzmann equation for a homogeneous freely evolving system of smooth hard disks collidin...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
The hydrodynamic equation governing the homogeneous time evolution of the temperature in a model of ...
Normal shock profiles a dense hard sphere gas are obtained by solving numerically the Enskog kinetic...
A kinetic model is proposed for the nonequilibrium flow of dense gases composed of hard sphere molec...
The Navier-Stokes transport coefficients for a model of a confined quasi-two-dimensional granular ga...
The Enskog equation is solved by a numerical method which combines finite difference discretization ...
In this paper we extend the spectral method developed in [29, 30] to the case of the inelastic Bolt...