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TangoSIDM Project: Is the Stellar Mass Tully-Fisher relation consistent with SIDM?

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arxiv 2403.09186 v1 pith:SBI4FB46 submitted 2024-03-14 astro-ph.CO astro-ph.GA

classification astro-ph.COastro-ph.GA
keywords sidmgalaxyrelationdarkmatterstellarformationmass
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abstract

Self-interacting dark matter (SIDM) has the potential to significantly influence galaxy formation in comparison to the cold, collisionless dark matter paradigm (CDM), resulting in observable effects. This study aims to elucidate this influence and to demonstrate that the stellar mass Tully-Fisher relation imposes robust constraints on the parameter space of velocity-dependent SIDM models. We present a new set of cosmological hydrodynamical simulations that include the SIDM scheme from the TangoSIDM project and the SWIFT-EAGLE galaxy formation model. Two cosmological simulations suites were generated: one (Reference model) which yields good agreement with the observed $z=0$ galaxy stellar mass function, galaxy mass-size relation, and stellar-to-halo mass relation; and another (WeakStellarFB model) in which the stellar feedback is less efficient, particularly for Milky Way-like systems. Both galaxy formation models were simulated under four dark matter cosmologies: CDM, SIDM with two different velocity-dependent cross sections, and SIDM with a constant cross section. While SIDM does not modify global galaxy properties such as stellar masses and star formation rates, it does make the galaxies more extended. In Milky Way-like galaxies, where baryons dominate the central gravitational potential, SIDM thermalises, causing dark matter to accumulate in the central regions. This accumulation results in density profiles that are steeper than those produced in CDM from adiabatic contraction. The enhanced dark matter density in the central regions of galaxies causes a deviation in the slope of the Tully-Fisher relation, which significantly diverges from the observational data. In contrast, the Tully-Fisher relation derived from CDM models aligns well with observations.

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Cited by 2 Pith papers

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

  1. Introducing the AIDA-TNG project: galaxy formation in alternative dark matter models

    astro-ph.CO 2025-01 conditional novelty 7.0 of 10

    A new suite of cosmological simulations combines the IllustrisTNG galaxy formation model with warm and self-interacting dark matter, showing that galaxies look similar across models while halo structure and power spec...

  2. A Novel Implementation of Self-Interacting Dark Matter in AREPO

    astro-ph.CO 2026-07 accept novelty 6.5 of 10

    A dedicated-tree Monte-Carlo SIDM module in AREPO-2 conserves energy/momentum under multiple scatters, supports velocity-dependent and inelastic models, and runs with only modest overhead versus CDM except in late cor...

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