Models of Distorted and Evolving Dark Matter Halos
J.L. Sanders (1,2), E.J. Lilley (1), E. Vasiliev (1,3), N.W. Evans, (1), D. Erkal (4) ((1) IoA, Cambridge, (2) UCL, (3) LPI, Moscow, (4) Surrey)

TL;DR
This paper demonstrates that basis function expansions can accurately model the evolution of dark matter halos, enabling precise orbit reconstructions and analysis of satellite dynamics in evolving galactic potentials.
Contribution
It introduces a method using basis function expansions to reproduce and analyze the time-dependent structure and evolution of dark matter halos from cosmological simulations.
Findings
High-fidelity orbit reconstructions are achievable with the proposed method.
Time evolution introduces about 15% uncertainty in satellite orbital parameters.
Planes of satellites evolve similarly in both static and evolving halo potentials.
Abstract
We investigate the ability of basis function expansions to reproduce the evolution of a Milky Way-like dark matter halo, extracted from a cosmological zoom-in simulation. For each snapshot, the density of the halo is reduced to a basis function expansion, with interpolation used to recreate the evolution between snapshots. The angular variation of the halo density is described by spherical harmonics, and the radial variation either by biorthonormal basis functions adapted to handle truncated haloes or by splines. High fidelity orbit reconstructions are attainable using either method with similar computational expense. We quantify how the error in the reconstructed orbits varies with expansion order and snapshot spacing. Despite the many possible biorthonormal expansions, it is hard to beat a conventional Hernquist-Ostriker expansion with a moderate number of terms ( radial…
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