Modeling Globular Cluster Stellar Streams with a Basis-Expansion N-body Code
astro-ph.GA, astro-ph.IM
Submitted: 2026-02-13
Updated: 2026-09-13
Comments: 27 pages, 15 figures, accepted by ApJ
Code: https://github.com/KerwannTEP/Nbody6ppGPU
License: http://creativecommons.org/licenses/by/4.0/
The gist: Globular cluster stellar streams probe galaxy-formation processes and can potentially reveal the distribution of dark matter in galaxies.
Terminology
Abstract
Globular cluster stellar streams probe galaxy-formation processes and can potentially reveal the distribution of dark matter in galaxies. In many theoretical studies, streams are modeled with particle-spray or direct N-body codes. But particle-spray methods abstract away the internal dynamics of the progenitor by making strong assumptions about the escape physics, while direct N-body is prohibitively expensive for realistic (N>10 5) systems. In this paper, we present the stream-modeling capabilities of KRIOS, a new basis-expansion N-body code for collisional stellar dynamics, that bridges this runtime vs. accuracy gap. We show that KRIOS reproduces NBODY6++GPU cluster models, and their associated streams, more accurately than particle spray in a fraction of the NBODY6++GPU wall-clock time. We then compare KRIOS to various particle-spray methods on 10 orbits similar to known Milky Way streams. The morphology and kinematics of these streams most disagree when the progenitor is tightly bound to the host, as these systems are often subject to stronger tidal forces. Finally, we discuss which elements of the progenitor physics are most important for modeling stellar streams and how these might be incorporated into particle-spray methods.
Sources
- Efficient and accurate force replay in cosmological-baryonic simulations
- StarStream on Gaia: Stream discovery and mass loss rate of globular clusters
- A New Catalog of Globular Clusters in the Milky Way
- Catalog of Mock Stellar Streams in Milky Way-Like Galaxies
- Modelling the M68 stellar stream with realistic mass loss and frequency distributions in angle-action coordinates
- Breaking Down the $\textsf{CosmoGEMS}$: Toward Modeling and Understanding Globular Cluster Stellar Streams in a Fully Cosmological Context
- Kinematics of Stellar Streams from Globular Clusters Depend on Black Hole Retention and Star Mass: A Selection Effect for Dark Matter Inference
- Dancing Streams In Merging Halos: Stellar Streams in a MW--LMC-like merger
- Evolution of the kinematic properties of rotating multiple-population globular clusters
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