International audienceWe investigate a high-order, fully explicit, asymptotic-preserving scheme for a kinetic equation with linear relaxation, both in the hydrodynamic and diffusive scalings in which a hyperbolic, resp., parabolic, limiting equation exists. The scheme first takes a few small (inner) steps with a simple, explicit method (such as direct forward Euler) to damp out the stiff components of the solution and estimate the time derivative of the slow components. These estimated time derivatives are then used in an (outer) Runge--Kutta method of arbitrary order. We show that, with an appropriate choice of inner step size, the time-step restriction on the outer time step is similar to the stability condition for the limiting macroscop...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe investigate a high-order, fully explicit, asymptotic-preserving scheme for ...
International audienceWe investigate a high-order, fully explicit, asymptotic-preserving scheme for ...
We investigate a high-order, fully explicit, asymptotic-preserving scheme for a kinetic equation wit...
We study a projective integration scheme for a kinetic equation in both the diffusive and hydrodynam...
We investigate a high-order, fully explicit, asymptotic-preserving scheme for a kinetic equation wit...
We study a projective integration scheme for a kinetic equation in both the diffusive and hydrodynam...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
high-order asymptotic-preserving scheme for kinetic equations using projective integratio
We present a general, high-order, fully explicit relaxation scheme which can be applied to any syste...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe investigate a high-order, fully explicit, asymptotic-preserving scheme for ...
International audienceWe investigate a high-order, fully explicit, asymptotic-preserving scheme for ...
We investigate a high-order, fully explicit, asymptotic-preserving scheme for a kinetic equation wit...
We study a projective integration scheme for a kinetic equation in both the diffusive and hydrodynam...
We investigate a high-order, fully explicit, asymptotic-preserving scheme for a kinetic equation wit...
We study a projective integration scheme for a kinetic equation in both the diffusive and hydrodynam...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
International audienceWe investigate a projective integration scheme for a kinetic equation in the l...
high-order asymptotic-preserving scheme for kinetic equations using projective integratio
We present a general, high-order, fully explicit relaxation scheme which can be applied to any syste...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...
International audienceWe present a general, high-order, fully explicit relaxation scheme which can b...