Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
6933036 | Journal of Computational Physics | 2014 | 17 Pages |
Abstract
The paper is devoted to the further development and systematic performance evaluation of a recent deterministic framework Nesvetay-3D for modelling three-dimensional rarefied gas flows. Firstly, a review of the existing discretization and parallelization strategies for solving numerically the Boltzmann kinetic equation with various model collision integrals is carried out. Secondly, a new parallelization strategy for the implicit time evolution method is implemented which improves scaling on large CPU clusters. Accuracy and scalability of the methods are demonstrated on a pressure-driven rarefied gas flow through a finite-length circular pipe as well as an external supersonic flow over a three-dimensional re-entry geometry of complicated aerodynamic shape.
Related Topics
Physical Sciences and Engineering
Computer Science
Computer Science Applications
Authors
Vladimir Titarev, Michael Dumbser, Sergey Utyuzhnikov,