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July 12, 2026Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

Reproducing stellar structures in the Magellanic Clouds using a genetic algorithm with N-body simulations

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BGBethany Ray GarverDNDavid L. NideverVDVictor P. Debattista

Key Points

  • To understand the origin of stellar substructures in the Magellanic Clouds and constrain their past orbit through simulations.
  • Modeled the interactions of the Milky Way with the Large and Small Magellanic Clouds over 2.5 billion years using N-body simulations and a genetic algorithm.
  • Conducted ~8,000 simulations to estimate initial conditions for the Magellanic Clouds.
  • Focused on modeling observed features like the LMC disc warp and the tidal expansion of the SMC.
  • Identified two significant interactions between the MCs occurring 940 Myr and 140 Myr ago.
  • Reproduced the LMC disc warp caused by the most recent interaction with the SMC, with a mean ripple amplitude of 1.3 kpc.
  • Captured features such as a ring-shaped overdensity in the LMC and greater distance dispersion on the eastern side of the SMC.

Abstract

Abstract The Large and Small Magellanic Clouds (LMC and SMC, respectively) are the largest satellite galaxies of the Milky Way (MW) and their interactions with each other have given rise to multiple stellar substructures in their periphery as well as the gaseous Magellanic Stream. To better understand the origin of the stellar substructures and constrain their past orbit, we model the past 2.5 Gyr of the interactions between the MW and the LMC and SMC using N-body simulations. Due to the strong interactions, analytical orbit integrations are insufficient to analyze the past galaxy orbits accurately. Therefore, we use a genetic algorithm in combination with N-body simulations to determine the LMC and SMC initial positions and velocities 2.5 Gyr ago that result in the Magellanic Clouds (MCs) arriving near their observed locations and velocities at the current time. After running ~8,000 simulations, our best matching model includes two close interactions between the MCs (940 Myr and 140 Myr ago) and reproduces some observed features of the MCs, including the LMC disc warp, a ring-shaped overdensity in the LMC, the tidal expansion of the SMC, and a greater distance dispersion on the eastern side of the SMC. The LMC disc warp is caused by the most recent interaction with the SMC, which occurred ~140 Myr before the present. The interaction causes global ripples in the LMC disc with a mean amplitude of 1.3 kpc.

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Cite This Study

Garver et al. (2026) studied this question.

synapsesocial.com/papers/6a5331ce4f7abc118adeda42https://doi.org/10.1093/mnras/stag1287
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