Cosmic-Enu: An emulator for the non-linear neutrino power spectrum
Abstract
Cosmology is poised to measure the neutrino mass sum and has identified several smaller-scale observables sensitive to neutrinos, necessitating accurate predictions of neutrino clustering over a wide range of length scales. The FlowsForTheMasses non-linear perturbation theory for the massive neutrino power spectrum, , agrees with its companion N-body simulation at the level for Mpc. Building upon the Mira-Titan IV emulator for the cold matter, we use FlowsForTheMasses to construct an emulator for covering a large range of cosmological parameters and neutrino fractions , which corresponds to ~eV. Consistent with FlowsForTheMasses at the level, it returns a power spectrum in milliseconds. Ranking the neutrinos by initial momenta, we also emulate the power spectra of momentum deciles, providing information about their perturbed distribution function. Comparing a ~eV model to a wide range of N-body simulation methods, we find agreement to for Mpc and to for Mpc. We find that the enhancement factor, the ratio of to its linear-response equivalent, is most strongly correlated with , and also with the clustering amplitude . Furthermore, non-linearities enhance the free-streaming-limit scaling beyond its linear value of 4, increasing the -sensitivity of the small-scale neutrino density.
Keywords
Cite
@article{arxiv.2311.11240,
title = {Cosmic-Enu: An emulator for the non-linear neutrino power spectrum},
author = {Amol Upadhye and Juliana Kwan and Ian G. McCarthy and Jaime Salcido and Kelly R. Moran and Earl Lawrence and Yvonne Y. Y. Wong},
journal= {arXiv preprint arXiv:2311.11240},
year = {2023}
}
Comments
17 pages, 14 figures, 3 tables. Emulator code available at: https://github.com/upadhye/Cosmic-Enu