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The baryon cycle in modern cosmological hydrodynamical simulations

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arxiv 2402.08408 v2 pith:XQ2V65W6 submitted 2024-02-13 astro-ph.GA

classification astro-ph.GA
keywords cosmologicalfeedbackoutflowsscalesimulationsbaryonbeyondeagle
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

In recent years, cosmological hydrodynamical simulations have proven their utility as key interpretative tools in the study of galaxy formation and evolution. In this work, we present a like-for-like comparison between the baryon cycle in three publicly available, leading cosmological simulation suites: EAGLE, IllustrisTNG, and SIMBA. While these simulations broadly agree in terms of their predictions for the stellar mass content and star formation rates of galaxies at $z\approx0$, they achieve this result for markedly different reasons. In EAGLE and SIMBA, we demonstrate that at low halo masses ($M_{\rm 200c}\lesssim 10^{11.5}\, M_{\odot}$), stellar feedback (SF)-driven outflows can reach far beyond the scale of the halo, extending up to $2-3\times R_{\rm 200c}$. In contrast, in TNG, SF-driven outflows, while stronger at the scale of the ISM, recycle within the CGM (within $R_{\rm 200c}$). We find that AGN-driven outflows in SIMBA are notably potent, reaching several times $R_{\rm 200c}$ even at halo masses up to $M_{\rm 200c}\approx10^{13.5}\, M_{\odot}$. In both TNG and EAGLE, AGN feedback can eject gas beyond $R_{\rm 200c}$ at this mass scale, but seldom beyond $2-3\times R_{\rm 200c}$. We find that the scale of feedback-driven outflows can be directly linked with the prevention of cosmological inflow, as well as the total baryon fraction of haloes within $R_{\rm 200c}$. This work lays the foundation to develop targeted observational tests that can discriminate between feedback scenarios, and inform sub-grid feedback models in the next generation of simulations.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. RABBITS IV: Stellar feedback and SMBH merging time-scales in the sub-Milky Way mass regime

    astro-ph.GA 2026-07 accept novelty 7.0 of 10

    Stronger stellar feedback lowers central stellar densities in low-mass merger remnants and systematically lengthens SMBH merger delays, yielding a 30–500 Myr spread in post-hardening coalescence times.

  2. Evaluating the flexibility of the MillenniumTNG galaxy formation model with multi-zoom re-simulations

    astro-ph.GA 2026-07 conditional novelty 6.0 of 10

    A parameter combination of the MillenniumTNG galaxy-formation model is found that reproduces the observed galaxy stellar-mass function and the lower gas fractions measured in groups and clusters, showing the model is ...

  3. How does feedback affect the star formation histories of galaxies?

    astro-ph.GA 2025-08 conditional novelty 5.0 of 10

    A unified empirical equation, fitted separately to three simulation suites, links galaxy star formation history shape to halo mass, baryon fraction, black hole mass, and feedback strength.

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