Projects per year
Abstract
We use two cosmological simulations to study the impact of spurious heating of stellar motions within simulated galaxies by dark matter (DM) particles. The simulations share the same numerical and subgrid parameters, but one used a factor of 7 more DM particles. Many galaxy properties are unaffected by spurious heating, including their masses, star formation histories, and the spatial distribution of their gaseous baryons. The distribution and kinematics of stellar and DM particles, however, are affected. Below a resolution-dependent virial mass,, galaxies have higher characteristic velocities, larger sizes, and more angular momentum in the simulation with lower DM mass resolution; haloes have higher central densities and lower velocity dispersions. Above, galaxies and haloes have similar properties in both runs. The differences arise due to spurious heating, which transfers energy from DM to stellar particles, causing galaxies to heat up and haloes to cool down. The value of can be derived from an empirical disc heating model, and coincides with the mass below which the predicted spurious velocity dispersion exceeds the measured velocity dispersion of simulated galaxies. We predict that galaxies in the eagle run and IllustrisTNG-100 are robust to spurious collisional effects at their half-mass radii provided; for the eagle run and IllustrisTNG-50, we predict. Suppressing spurious heating at smaller/larger radii, or for older/younger stellar populations, requires haloes to be resolved with more/fewer DM particles.
Original language | English |
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Pages (from-to) | 5614-5630 |
Number of pages | 17 |
Journal | Monthly Notices of the Royal Astronomical Society |
Volume | 525 |
Issue number | 4 |
DOIs | |
Publication status | Published - 1 Nov 2023 |
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The Enigma of Galactic Rotation
Obreschkow, D. (Investigator 01)
ARC Australian Research Council
2/12/19 → 1/12/26
Project: Research
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Probing Dark Matter Through the Small Scale Structure of the Universe
Ludlow, A. (Investigator 01)
ARC Australian Research Council
30/06/17 → 30/06/25
Project: Research