Neutrinos in N-body simulations
arXiv:2102.05690 · doi:10.1103/PhysRevD.104.043512
Abstract
In the next decade, cosmological surveys will have the statistical power to detect the absolute neutrino mass scale. N-body simulations of large-scale structure formation play a central role in interpreting data from such surveys. Yet these simulations are Newtonian in nature. We provide a quantitative study of the limitations to treating neutrinos, implemented as N-body particles, in N-body codes, focusing on the error introduced by neglecting special relativistic effects. Special relativistic effects are potentially important due to the large thermal velocities of neutrino particles in the simulation box. We derive a self-consistent theory of linear perturbations in Newtonian and non-relativistic neutrinos and use this to demonstrate that N-body simulations overestimate the neutrino free-streaming scale, and cause errors in the matter power spectrum that depend on the initial redshift of the simulations. For , and neutrino masses within the currently allowed range, this error is , though represents an up to correction to the shape of the neutrino-induced suppression to the cold dark matter power spectrum. We argue that the simulations accurately model non-linear clustering of neutrinos so that the error is confined to linear scales.
15 pages, 7 figures. Matching prd accepted version
References in corpus (10)
- Massive neutrinos and cosmology
- The Effect of Thermal Neutrino Motion on the Non-linear Cosmological Matter Power Spectrum
- Neutrino cosmology and Planck
- Massive Neutrinos in Cosmology: Analytic Solutions and Fluid Approximation
- Structure formation with massive neutrinos: going beyond linear theory
- Relativistic N-body simulations with massive neutrinos
- Messengers from the Early Universe: Cosmic Neutrinos and Other Light Relics
- Neutrino Mass from Cosmology: Probing Physics Beyond the Standard Model
- The Sejong Suite: Cosmological Hydrodynamical Simulations with Massive Neutrinos, Dark Radiation, and Warm Dark Matter
- PKDGRAV3: Beyond Trillion Particle Cosmological Simulations for the Next Era of Galaxy Surveys