Towards an accurate treatment of the reduced speed of light approximation in parameterized radiative transfer simulations of reionization
arXiv:2409.11467
Abstract
The reduced speed of light approximation (RSLA) has been employed to speed up radiative transfer simulations of reionization by a factor of . However, it has been shown to cause significant errors in the HI-ionizing background near reionization's end in simulations of representative cosmological volumes. We show that using the RSLA is, to a good approximation, equivalent to re-scaling the global ionizing emissivity in a redshift-dependent way. We derive this re-scaling and show that it can be used to ``correct'' the emissivity in RSLA simulations. This method requires the emissivity to be re-scaled after the simulation has been run, which limits its applicability to situations where the emissivity is set ``by hand'' or determined by free parameters. We test our method by running full speed of light simulations using these re-scaled emissivities and comparing them with their RSLA counterparts. We find that for reduced speeds of light , the 21 cm power spectrum at and key Ly forest observables agree to within , and often within , throughout reionization. Position-dependent time-delay effects cause inaccuracies in reionization's morphology on large scales at the factor of level for . Our method allows for up to a factor of speedup in studies that express the emissivity in terms of free parameters, including efforts to constrain the emissivity using observations. This is a crucial step towards constraining the ionizing properties of high-redshift galaxies using efficient radiative transfer simulations.
23 pages, 12 figures, accepted for publication in JCAP