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A radiative transfer module for relativistic magnetohydrodynamics in the PLUTO code

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arxiv 1903.10456 v1 pith:J7XUSFBL submitted 2019-03-25 astro-ph.IM

A radiative transfer module for relativistic magnetohydrodynamics in the PLUTO code

classification astro-ph.IM
keywords radiationcodeequationsplutotransportcomputationsdiffusionfree-streaming
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We present a numerical implementation for the solution of the relativistic radiation hydrodynamics and magnetohydrodynamics equations, designed as an independent module within the freely available code PLUTO. The radiation transfer equations are solved under the grey approximation and imposing the M1 closure, which allows the radiation transport to be handled in both the free-streaming and diffusion limits. Equations are integrated following an implicit-explicit scheme, where radiation-matter interaction terms are integrated implicitly, whereas transport and all of the remaining source terms are solved explicitly by means of the same Godunov-type solvers included in PLUTO. Among these, we introduce a new Harten-van Leer-contact (HLLC) solver for optically thin radiation transport. The code is suitable for multidimensional computations in Cartesian, spherical and cylindrical coordinates, using either a single processor or parallel architectures. Adaptive grid computations are also made possible, by means of the CHOMBO library. The algorithm performance is demonstrated through a series of numerical benchmarks by investigating various different configurations with a particular emphasis on the behavior of the solutions in the free-streaming and diffusion limits.

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