arXiv · 1812.03933
Lagrangian diffusive reactor for detailed thermochemical computations of plasma flows
Abstract
The simulation of thermochemical nonequilibrium for the atomic and molecular energy level populations in plasma flows requires a comprehensive modeling of all the elementary collisional and radiative processes involved. Coupling detailed chemical mechanisms to flow solvers is computationally expensive and often limits their application to 1D simulations. We develop an efficient Lagrangian diffusive reactor moving along the streamlines of a baseline flow simulation to compute detailed thermochemical effects. In addition to its efficiency, the method allows us to model both continuum and rarefied flows, while including mass and energy diffusion. The Lagrangian solver is assessed for several testcases including strong normal shockwaves, as well as 2D axisymmetric blunt-body hypersonic rarefied flows. In all the testcases performed, the Lagrangian reactor improves drastically the baseline simulations. The computational cost of a Lagrangian recomputation is typically orders of magnitude smaller with respect to a full solution of the problem. The solver has the additional benefit of being immune from statistical noise, which strongly affects the accuracy of DSMC simulations, especially considering minor species in the mixture. The results demonstrate that the method enables applying detailed mechanisms to multidimensional solvers to study thermo-chemical nonequilibrium flows.
Explore related subjects
Keep this discovery
Stefano Boccelli, Federico Bariselli, Bruno Dias, Thierry E. Magin. 2018-12-10. Lagrangian diffusive reactor for detailed thermochemical computations of plasma flows. https://doi.org/10.1088/1361-6595%2Fab09b5
Cite the original work for its findings. Save a collection to share your selection of sources.