A novel approach for accurate radiative transfer in cosmological hydrodynamic simulations
arXiv:1012.1017 · doi:10.1111/j.1365-2966.2011.18986.x
Abstract
We present a numerical implementation of radiative transfer based on an explicitly photon-conserving advection scheme, where radiative fluxes over the cell interfaces of a structured or unstructured mesh are calculated with a second-order reconstruction of the intensity field. The approach employs a direct discretisation of the radiative transfer equation in Boltzmann form with adjustable angular resolution that in principle works equally well in the optically thin and optically thick regimes. In our most general formulation of the scheme, the local radiation field is decomposed into a linear sum of directional bins of equal solid-angle, tessellating the unit sphere. Each of these "cone-fields" is transported independently, with constant intensity as a function of direction within the cone. Photons propagate at the speed of light (or optionally using a reduced speed of light approximation to allow larger timesteps), yielding a fully time-dependent solution of the radiative transfer equation that can naturally cope with an arbitrary number of sources, as well as with scattering. The method casts sharp shadows, subject to the limitations induced by the adopted angular resolution. If the number of point sources is small and scattering is unimportant, our implementation can alternatively treat each source exactly in angular space, producing shadows whose sharpness is only limited by the grid resolution. A third hybrid alternative is to treat only a small number of the locally most luminous point sources explicitly, with the rest of the radiation intensity followed in a radiative diffusion approximation. We have implemented the method in the moving-mesh code {\small AREPO}, where it is coupled to the hydrodynamics in an operator splitting approach that subcycles the radiative transfer alternatingly with the hydrodynamical evolution steps.
20 pages, 23 figures, submitted to MNRAS
References in corpus (14)
- Radiative transfer simulations of cosmic reionization I: methodology and initial results
- Cosmological Radiative Transfer Codes Comparison Project I: The Static Density Field Tests
- Driving Turbulence and Triggering Star Formation by Ionizing Radiation
- A radiative transfer scheme for cosmological reionization based on a local Eddington tensor
- TRAPHIC - Radiative Transfer for Smoothed Particle Hydrodynamics Simulations
- The simulated 21 cm signal during the epoch of reionization : full modeling of the Ly-alpha pumping
- iVINE - Ionization in the parallel tree/SPH code VINE: First results on the observed age-spread around O-stars
- Does Radiative Feedback by the First Stars Promote or Prevent Second Generation Star Formation?
- An implementation of radiative transfer in the cosmological simulation code GADGET
- SPHRAY: A Smoothed Particle Hydrodynamics Ray Tracer for Radiative Transfer
- A New Moment Method for Continuum Radiative Transfer in Cosmological Reionization
- RADAMESH: Cosmological Radiative Transfer for Adaptive Mesh Refinement Simulations
- Transport on Adaptive Random Lattices
- START: Smoothed particle hydrodynamics with tree-based accelerated radiative transfer
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