Particles-on-demand formulation of kinetic theory [B. Dorschner, F. B??sch and I. V. Karlin, Phys. Rev. Lett. 121, 130602 (2018)] is used to simulate a variety of compressible flows with strong discontinuities in density, pressure, and velocity. Two modifications are applied to the original formulation of the particles-on-demand method. First, a regularization by Grad???s projection of particles populations is combined with the reference frame transformations in order to enhance stability and accuracy. Second, a finite-volume scheme is implemented which allows tight control of mass, momentum, and energy conservation. The proposed model is validated with an array of challenging one-and two-dimensional benchmarks of compressible flows, includ...
AbstractA macroscopic two-fluid model of compressible particle-laden gas flows is considered. The go...
International audienceA unified expression for high-speed compressible segregated consistent lattice...
International audienceIn this article, we propose a numerical framework based on multiple relaxation...
Particles on Demand formulation of kinetic theory [B. Dorschner, F. B\"{o}sch and I. V. Karlin, {\it...
In this exploratory study, we apply shock-capturing schemes within the framework of the Particles on...
Abstract: It is well known that the standard Lattice-Boltzmann method (LBM) is applicable ...
In this paper we present a lattice Boltzmann model to simulate compressible flows by introducing an ...
We derive a new class of particle methods for conservation laws, which are based on numerical flux f...
International audienceA hyperbolic two-fluid model for gas-particle flow derived using the Boltzmann...
A novel formulation of fluid dynamics as a kinetic theory with tailored, on-demand constructed parti...
We present a Lattice Boltzmann model to simulate compressible flows by introducing an attractive pot...
This work is devoted to the study of complex flows where hydrodynamic and rarefled regimes coexist. ...
High Mach number compressible flows are ubiquitous in the field of high energy density physics.The t...
We present a simple and general approach to formulate the lattice BGK model for high-speed compressi...
In this doctoral thesis, efficient particle methods describing phase transition and multi-scale flui...
AbstractA macroscopic two-fluid model of compressible particle-laden gas flows is considered. The go...
International audienceA unified expression for high-speed compressible segregated consistent lattice...
International audienceIn this article, we propose a numerical framework based on multiple relaxation...
Particles on Demand formulation of kinetic theory [B. Dorschner, F. B\"{o}sch and I. V. Karlin, {\it...
In this exploratory study, we apply shock-capturing schemes within the framework of the Particles on...
Abstract: It is well known that the standard Lattice-Boltzmann method (LBM) is applicable ...
In this paper we present a lattice Boltzmann model to simulate compressible flows by introducing an ...
We derive a new class of particle methods for conservation laws, which are based on numerical flux f...
International audienceA hyperbolic two-fluid model for gas-particle flow derived using the Boltzmann...
A novel formulation of fluid dynamics as a kinetic theory with tailored, on-demand constructed parti...
We present a Lattice Boltzmann model to simulate compressible flows by introducing an attractive pot...
This work is devoted to the study of complex flows where hydrodynamic and rarefled regimes coexist. ...
High Mach number compressible flows are ubiquitous in the field of high energy density physics.The t...
We present a simple and general approach to formulate the lattice BGK model for high-speed compressi...
In this doctoral thesis, efficient particle methods describing phase transition and multi-scale flui...
AbstractA macroscopic two-fluid model of compressible particle-laden gas flows is considered. The go...
International audienceA unified expression for high-speed compressible segregated consistent lattice...
International audienceIn this article, we propose a numerical framework based on multiple relaxation...