Shock wave structure in astrophysical flows with an account of photon transfer
arXiv:1412.1434 · doi:10.1088/0004-637X/811/1/47
Abstract
For an accurate treatment of the shock wave propagation in high-energy astrophysical phenomena, such as supernova shock breakouts, gamma-ray bursts and accretion disks, knowledge of radiative transfer plays a crucial role. In this paper we consider one-dimensional (1D) special relativistic radiation hydrodynamics by solving the Boltzmann equation for radiative transfer. The structure of a radiative shock is calculated for a number of shock tube problems, including strong shock waves, and relativistic- and radiation-dominated cases. Calculations are performed using an iterative technique that consistently solves the equations of relativistic hydrodynamics and relativistic comoving radiative transfer. A comparison of radiative transfer solutions with the Eddington approximation and the M1 closure is made. A qualitative analysis of moment equations for radiation is performed and the conditions for the existence of jump discontinuity for non-relativistic cases are investigated numerically.
10 pages, 10 figures, 2 tables, Accepted for publication in Astrophysical Journal, July 23, 2015
References in corpus (6)
- Three-Dimensional General Relativistic Radiation Magnetohydrodynamical Simulation of Super-Eddington Accretion, using a new code HARMRAD with M1 Closure
- Semi-implicit scheme for treating radiation under M1 closure in general relativistic conservative fluid dynamics codes
- Supernova Shock Breakout from a Red Supergiant
- Probing Shock Breakout with Serendipitous GALEX Detections of Two SNLS Type II-P Supernovae
- Relativistic Radiation Magnetohydrodynamics in Dynamical Spacetimes: Numerical Methods and Tests
- Numeric spectral radiation hydrodynamic calculations of supernova shock breakouts
Cited by in corpus (10)
- Superluminous supernovae
- SONS: The JCMT legacy survey of debris discs in the submillimetre
- Sub-photospheric shocks in relativistic explosions
- MASTER OT J004207.99+405501.1/M31LRN 2015 Luminous Red Nova in M31: Discovery, Light Curve, Hydrodynamics, Evolution
- An Extension of the Athena++ Code Framework for Radiation-Magnetohydrodynamics in General Relativity Using a Finite-Solid-Angle Discretization
- Aspherical Supernovae: Effects on Early Light Curves
- Simulating the shock dynamics of a neutron star accretion column
- CAFE-R a code that solves the special relativistic radiation hydrodynamics equations
- Modeling long GRBs using a single shock with relativistic radiation hydrodynamics
- On the application of Jacobian-free Riemann solvers for relativistic radiation magnetohydrodynamics under M1 closure