magritte, a modern software library for 3D radiative transfer – II. Adaptive ray-tracing, mesh construction, and reduction

Author:

De Ceuster Frederik12ORCID,Bolte Jan2,Homan Ward2,Maes Silke2,Malfait Jolien2,Decin Leen23,Yates Jeremy1,Boyle Peter45,Hetherington James67

Affiliation:

1. Department of Physics and Astronomy, University College London, Gower Place, London WC1E 6BT, UK

2. Department of Physics and Astronomy, Institute of Astronomy, KU Leuven, Celestijnenlaan 200D, B-3001 Leuven, Belgium

3. School of Chemistry, University of Leeds, Leeds LS2 9JT, UK

4. School of Physics and Astronomy, The University of Edinburgh, Edinburgh EH9 3FD, UK

5. Brookhaven National Laboratory, Upton, NY 11973, USA

6. Department of Computer Science, University College London, Bloomsburry, London WC1E 6EA, UK

7. The Alan Turing Institute, 96 Euston Road, Kings Cross, London NW1 2DB, UK

Abstract

ABSTRACT Radiative transfer is a notoriously difficult and computationally demanding problem. Yet, it is an indispensable ingredient in nearly all astrophysical and cosmological simulations. Choosing an appropriate discretization scheme is a crucial part of the simulation, since it not only determines the direct memory cost of the model but also largely determines the computational cost and the achievable accuracy. In this paper, we show how an appropriate choice of directional discretization scheme as well as spatial model mesh can help alleviate the computational cost, while largely retaining the accuracy. First, we discuss the adaptive ray-tracing scheme implemented in our 3D radiative transfer library magritte, that adapts the rays to the spatial mesh and uses a hierarchical directional discretization based on healpix. Second, we demonstrate how the free and open-source software library gmsh can be used to generate high-quality meshes that can be easily tailored for magritte. In particular, we show how the local element size distribution of the mesh can be used to optimize the sampling of both analytically and numerically defined models. Furthermore, we show that when using the output of hydrodynamics simulations as input for a radiative transfer simulation, the number of elements in the input model can often be reduced by an order of magnitude, without significant loss of accuracy in the radiation field. We demonstrate this for two models based on a hierarchical octree mesh resulting from adaptive mesh refinement, as well as two models based on smoothed particle hydrodynamics data.

Funder

Engineering and Physical Sciences Research Council

Intel Corporation

ERC

STFC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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