The MillenniumTNG Project: high-precision predictions for matter clustering and halo statistics

Author:

Hernández-Aguayo César12ORCID,Springel Volker1ORCID,Pakmor Rüdiger1ORCID,Barrera Monica1,Ferlito Fulvio1,White Simon D M1ORCID,Hernquist Lars3,Hadzhiyska Boryana345ORCID,Delgado Ana Maria3,Kannan Rahul3ORCID,Bose Sownak6ORCID,Frenk Carlos6

Affiliation:

1. Max-Planck-Institut für Astrophysik , Karl-Schwarzschild-Str. 1, D-85748 Garching , Germany

2. Excellence Cluster ORIGINS , Boltzmannstrasse 2, D-85748 Garching , Germany

3. Harvard-Smithsonian Center for Astrophysics , 60 Garden St, Cambridge, MA 02138 , USA

4. Miller Institute for Basic Research in Science, University of California , Berkeley, CA 94720 , USA

5. Physics Division, Lawrence Berkeley National Laboratory , Berkeley, CA 94720 , USA

6. Institute for Computational Cosmology, Department of Physics, Durham University , South Road, Durham DH1 3LE , UK

Abstract

ABSTRACT Cosmological inference with large galaxy surveys requires theoretical models that combine precise predictions for large-scale structure with robust and flexible galaxy formation modelling throughout a sufficiently large cosmic volume. Here, we introduce the millenniumTNG (MTNG) project which combines the hydrodynamical galaxy formation model of illustrisTNG with the large volume of the millennium simulation. Our largest hydrodynamic simulation, covering $(500 \, h^{-1}{\rm Mpc})^3 \simeq (740\, {\rm Mpc})^3$, is complemented by a suite of dark-matter-only simulations with up to 43203 dark matter particles (a mass resolution of $1.32\times 10^8 \, h^{-1}{\rm M}_\odot$) using the fixed-and-paired technique to reduce large-scale cosmic variance. The hydro simulation adds 43203 gas cells, achieving a baryonic mass resolution of $2\times 10^7 \, h^{-1}{\rm M}_\odot$. High time-resolution merger trees and direct light-cone outputs facilitate the construction of a new generation of semi-analytic galaxy formation models that can be calibrated against both the hydro simulation and observation, and then applied to even larger volumes – MTNG includes a flagship simulation with 1.1 trillion dark matter particles and massive neutrinos in a volume of $(3000\, {\rm Mpc})^3$. In this introductory analysis we carry out convergence tests on basic measures of non-linear clustering such as the matter power spectrum, the halo mass function and halo clustering, and we compare simulation predictions to those from current cosmological emulators. We also use our simulations to study matter and halo statistics, such as halo bias and clustering at the baryonic acoustic oscillation scale. Finally we measure the impact of baryonic physics on the matter and halo distributions.

Funder

Deutsche Forschungsgemeinschaft

NSF

UK Research and Innovation

BEIS

STFC

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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1. Ray-tracing versus Born approximation in full-sky weak lensing simulations of the MillenniumTNG project;Monthly Notices of the Royal Astronomical Society;2024-08-23

2. Statistical properties of filaments in the cosmic web;Monthly Notices of the Royal Astronomical Society;2024-08-07

3. The boundary of cosmic filaments;Monthly Notices of the Royal Astronomical Society;2024-07-24

4. The Uchuu-glam BOSS and eBOSS LRG lightcones: exploring clustering and covariance errors;Monthly Notices of the Royal Astronomical Society;2024-06-21

5. Improving the accuracy of halo mass based statistics for fast approximate N-body simulations;Monthly Notices of the Royal Astronomical Society;2024-06-13

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