DG-IMEX Method for a Two-Moment Model for Radiation Transport in the $\mathcal{O}(v/c)$ Limit
M. Paul Laiu, Eirik Endeve, J. Austin Harris, Zachary Elledge, Anthony, Mezzacappa

TL;DR
This paper introduces a realizability-preserving DG-IMEX numerical scheme for a relativistic two-moment model of radiation transport, ensuring physically consistent moments in astrophysical simulations.
Contribution
It develops a novel numerical method combining IMEX, DG discretization, and realizability enforcement for a relativistic two-moment radiation transport model.
Findings
The scheme accurately captures radiation transport phenomena.
It preserves the physical realizability of moments.
Numerical experiments demonstrate robustness and energy conservation.
Abstract
We consider particle systems described by moments of a phase-space density and propose a realizability-preserving numerical method to evolve a spectral two-moment model for particles interacting with a background fluid moving with nonrelativistic velocities. The system of nonlinear moment equations, with special relativistic corrections to , expresses a balance between phase-space advection and collisions and includes velocity-dependent terms that account for spatial advection, Doppler shift, and angular aberration. This model is closely related to the one promoted by Lowrie et al. (2001; JQSRT, 69, 291-304) and similar to models currently used to study transport phenomena in large-scale simulations of astrophysical environments. The method is designed to preserve moment realizability, which guarantees that the moments correspond to a nonnegative phase-space density.…
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Taxonomy
TopicsMeteorological Phenomena and Simulations · Gas Dynamics and Kinetic Theory · Ionosphere and magnetosphere dynamics
