Auriga Superstars: Improving the resolution and fidelity of stellar dynamics in cosmological galaxy simulations

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Main Authors: Pakmor, Ruediger, Fragkoudi, Francesca, Grand, Robert J. J., Simpson, Christine M., Gómez, Facundo A., van de Voort, Freeke, Bieri, Rebekka, Trick, Wilma, Werhahn, Maria, Talbot, Rosie Y.
Format: Preprint
Published: 2025
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author Pakmor, Ruediger
Fragkoudi, Francesca
Grand, Robert J. J.
Simpson, Christine M.
Gómez, Facundo A.
van de Voort, Freeke
Bieri, Rebekka
Trick, Wilma
Werhahn, Maria
Talbot, Rosie Y.
author_facet Pakmor, Ruediger
Fragkoudi, Francesca
Grand, Robert J. J.
Simpson, Christine M.
Gómez, Facundo A.
van de Voort, Freeke
Bieri, Rebekka
Trick, Wilma
Werhahn, Maria
Talbot, Rosie Y.
contents Cosmological hydrodynamical simulations have become an indispensable tool to understand galaxies. However, computational constraints still severely limit their numerical resolution. This not only restricts the sampling of the stellar component and its direct comparison to detailed observations, but also the precision with which it is evolved. To overcome these problems we introduce the \emph{Superstars} method. This method increases the stellar mass resolution in cosmological galaxy simulations in a computationally inexpensive way for a fixed dark matter and gas resolution without altering any global properties of the simulated galaxies. We demonstrate the \emph{Superstars} method for a Milky Way-like galaxy of the Auriga project, improving the stellar mass resolution by factors of $8$ and $64$ at an additional cost of only $10\%$ and $500\%$, respectively. We show and quantify that this improves the sampling of the stellar population in the disc and halo without changing the properties of the central galaxy or its satellites, unlike simulations that change the resolution of all components (gas, dark matter, stars). Moreover, the better stellar mass resolution reduces numerical heating of the stellar disc in its outskirts and keeps substructures in the stellar disc and inner halo more coherent. It also makes lower mass and lower surface brightness structures in the stellar halo more visible. The \emph{Superstars} method is straightforward to incorporate in any cosmological galaxy simulation that does not resolve individual stars.
format Preprint
id arxiv_https___arxiv_org_abs_2507_22104
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Auriga Superstars: Improving the resolution and fidelity of stellar dynamics in cosmological galaxy simulations
Pakmor, Ruediger
Fragkoudi, Francesca
Grand, Robert J. J.
Simpson, Christine M.
Gómez, Facundo A.
van de Voort, Freeke
Bieri, Rebekka
Trick, Wilma
Werhahn, Maria
Talbot, Rosie Y.
Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
Cosmological hydrodynamical simulations have become an indispensable tool to understand galaxies. However, computational constraints still severely limit their numerical resolution. This not only restricts the sampling of the stellar component and its direct comparison to detailed observations, but also the precision with which it is evolved. To overcome these problems we introduce the \emph{Superstars} method. This method increases the stellar mass resolution in cosmological galaxy simulations in a computationally inexpensive way for a fixed dark matter and gas resolution without altering any global properties of the simulated galaxies. We demonstrate the \emph{Superstars} method for a Milky Way-like galaxy of the Auriga project, improving the stellar mass resolution by factors of $8$ and $64$ at an additional cost of only $10\%$ and $500\%$, respectively. We show and quantify that this improves the sampling of the stellar population in the disc and halo without changing the properties of the central galaxy or its satellites, unlike simulations that change the resolution of all components (gas, dark matter, stars). Moreover, the better stellar mass resolution reduces numerical heating of the stellar disc in its outskirts and keeps substructures in the stellar disc and inner halo more coherent. It also makes lower mass and lower surface brightness structures in the stellar halo more visible. The \emph{Superstars} method is straightforward to incorporate in any cosmological galaxy simulation that does not resolve individual stars.
title Auriga Superstars: Improving the resolution and fidelity of stellar dynamics in cosmological galaxy simulations
topic Astrophysics of Galaxies
Instrumentation and Methods for Astrophysics
url https://arxiv.org/abs/2507.22104