The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature of its collision operator poses a real challenge for its numerical solution. In this paper, the fast spectral method [36], originally developed by Mouhot and Pareschi for the numerical approximation of the collision operator, is extended to deal with other collision kernels, such as those corresponding to the soft, Lennard–Jones, and rigid attracting potentials. The accuracy of the fast spectral method is checked by comparing our numerical solutions of the space-homogeneous Boltzmann equation with the exact Bobylev–Krook–Wu solutions for a gas of Maxwell molecules. It is found that the accuracy is improved by replacing the trapezoidal rule w...
International audienceIn this paper we deal with the extension of the Fast Kinetic Scheme (FKS) [J. ...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
textThe mathematical analysis of the Boltzmann equation for a wide range of important models is well...
The Boltzmann equation, an integro-differential equation for the molecular distribution function in ...
The Boltzmann equation offers a mesoscopic description of rarefied gases and is a typical represent...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
International audienceIn this paper we deal with the extension of the Fast Kinetic Scheme (FKS) [J. ...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation describes the dynamics of rarefied gas flows, but the multidimensional nature...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
Although the fast spectral method has been established for solving the Boltzmann equation for single...
textThe mathematical analysis of the Boltzmann equation for a wide range of important models is well...
The Boltzmann equation, an integro-differential equation for the molecular distribution function in ...
The Boltzmann equation offers a mesoscopic description of rarefied gases and is a typical represent...
The Boltzmann equation with an arbitrary intermolecular potential is solved by the fast spectral met...
International audienceIn this paper we deal with the extension of the Fast Kinetic Scheme (FKS) [J. ...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...
Iterative schemes to find steady-state solutions to the Boltzmann equation is efficient for highly r...