The Cosmological Simulation Code OpenGadget3 - Implementation of Self-Interacting Dark Matter

Dark matter (DM) could be subject to non-gravitational self-interactions which is relevant to resolve potential problems of cold DM on small scales. Their impact on astrophysical objects such as galaxies and galaxy clusters allows for constraining the strength of this scattering and eventually further properties of the cross-section. To model self-interacting dark matter (SIDM), N-body simulations are a crucial tool widely employed by the SIDM community. In this paper, we describe the SIDM implementation in the cosmological hydrodynamical N-body code OpenGadget3 and release it to the public. It is capable of simulating elastic scattering for various differential cross-sections, including strongly anisotropic cross-sections. Beyond single-species models, the code also allows simulating a two-species model with cross-species interactions. In addition to describing the numerical schemes for modelling various flavours of SIDM, we discuss the technical challenges of implementing them. Moreover, we demonstrate through several test problems that OpenGadget3 can accurately simulate DM self-interactions. Furthermore, we assess the performance of the code and provide scaling tests. Lastly, we highlight remaining challenges in the context of SIDM and describe directions for improving the current state of the art.

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Publication Details

Journal
The Open Journal of Astrophysics
Published
2026-09-18
DOI
https://doi.org/10.33232/001c.171159
Primary Topic
Dark Matter and Cosmic Phenomena
Type
article
Field-Weighted Citation Impact
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article

The Cosmological Simulation Code OpenGadget3 - Implementation of Self-Interacting Dark Matter

Moritz S. Fischer, Antonio Ragagnin, Kai Schmidt-Hoberg, Cenanda Arido et al.
The Open Journal of Astrophysics
Dark Matter and Cosmic Phenomena
article

The Cosmological Simulation Code OpenGadget3 - Implementation of Self-Interacting Dark Matter

Moritz S. Fischer, Antonio Ragagnin, Kai Schmidt-Hoberg, Cenanda Arido, Yashraj Patil, Marc Wiertel, Marcus Brüggen, Andrew Robertson, Mathias Garny, Klaus Dolag
article en

Abstract

Dark matter (DM) could be subject to non-gravitational self-interactions which is relevant to resolve potential problems of cold DM on small scales. Their impact on astrophysical objects such as galaxies and galaxy clusters allows for constraining the strength of this scattering and eventually further properties of the cross-section. To model self-interacting dark matter (SIDM), N-body simulations are a crucial tool widely employed by the SIDM community. In this paper, we describe the SIDM implementation in the cosmological hydrodynamical N-body code OpenGadget3 and release it to the public. It is capable of simulating elastic scattering for various differential cross-sections, including strongly anisotropic cross-sections. Beyond single-species models, the code also allows simulating a two-species model with cross-species interactions. In addition to describing the numerical schemes for modelling various flavours of SIDM, we discuss the technical challenges of implementing them. Moreover, we demonstrate through several test problems that OpenGadget3 can accurately simulate DM self-interactions. Furthermore, we assess the performance of the code and provide scaling tests. Lastly, we highlight remaining challenges in the context of SIDM and describe directions for improving the current state of the art.

The Open Journal of AstrophysicsVol. 9
ORCID (US)
Openalex Percentile: Top 80%
Dark Matter and Cosmic Phenomena
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The Cosmological Simulation Code OpenGadget3 - Implementation of Self-Interacting Dark Matter — Moritz S. Fischer, Antonio Ragagnin, et al. · The Open Journal of Astrophysics (2026) | TGRS Research Map | TGRS