Validation of Radiative Transfer Computation with Monte Carlo Method for Ultra-Relativistic Background Flow
arXiv:1708.02865 · doi:10.1016/j.jcp.2017.07.038
Abstract
We developed a three-dimensional radiative transfer code for an ultra-relativistic background flow-field by using the Monte Carlo (MC) method in the context of gamma-ray burst (GRB) emission. For obtaining reliable simulation results in the coupled computation of MC radiation transport with relativistic hydrodynamics which can reproduce GRB emission, we validated radiative transfer computation in the ultra-relativistic regime and assessed the appropriate simulation conditions. The radiative transfer code was validated through two test calculations: (1) computing in different inertial frames and (2) computing in flow-fields with discontinuous and smeared shock fronts. The simulation results of the angular distribution and spectrum were compared among three different inertial frames and in good agreement with each other. If the time duration for updating the flow-field was sufficiently small to resolve a mean free path of a photon into ten steps, the results were thoroughly converged. The spectrum computed in the flow-field with a discontinuous shock front obeyed a power-law in frequency whose index was positive in the range from 1 to 10 MeV. The number of photons in the high-energy side decreased with the smeared shock front because the photons were less scattered immediately behind the shock wave due to the small electron number density. The large optical depth near the shock front was needed for obtaining high-energy photons through bulk Compton scattering. Even one-dimensional structure of the shock wave could affect the results of radiation transport computation.
19 pages, 26 figures, accepted to Journal of Computational Physics
References in corpus (12)
- Prompt GRB emission from gradual energy dissipation
- Quasi-blackbody component and radiative efficiency of the prompt emission of gamma-ray bursts
- Very high efficiency photospheric emission in long duration gamma-ray bursts
- Spectral and timing properties of a dissipative GRB photosphere
- Monte Carlo Radiation Hydrodynamics with Implicit Methods
- Collimated Jet or Expanding Outflow: Possible Origins of GRBs and X-Ray Flashes
- Thermal Radiation from GRB Jets
- Spectral and Polarization Properties of Photospheric Emission From Stratified Jets
- Numerical models of blackbody-dominated gamma-ray bursts -- II. Emission properties
- Monte Carlo radiation hydrodynamics: methods, tests and application to supernova Type Ia ejecta
- Numerical models of blackbody-dominated gamma-ray bursts -- I. Hydrodynamics and the origin of the thermal emission
- Random walks and effective optical depth in relativistic flow