English

Testing fundamental physics with distant star clusters: theoretical models for pressure-supported stellar systems

Astrophysics of Galaxies 2014-11-18 v1

Abstract

We investigate the mean velocity dispersion and the velocity dispersion profile of stellar systems in MOND, using the N-body code N-MODY, which is a particle-mesh based code with a numerical MOND potential solver developed by Ciotti, Londrillo and Nipoti (2006). We have calculated mean velocity dispersions for stellar systems following Plummer density distributions with masses in the range of 104M10^4 M_\odot to 109M10^9 M_\odot and which are either isolated or immersed in an external field. Our integrations reproduce previous analytic estimates for stellar velocities in systems in the deep MOND regime (ai,aea0a_i, a_e \ll a_0), where the motion of stars is either dominated by internal accelerations (aiaea_i \gg a_e) or constant external accelerations (aeaia_e \gg a_i). In addition, we derive for the first time analytic formulae for the line-of-sight velocity dispersion in the intermediate regime (aiaea0a_i \sim a_e \sim a_0). This allows for a much improved comparison of MOND with observed velocity dispersions of stellar systems. We finally derive the velocity dispersion of the globular cluster Pal 14 as one of the outer Milky Way halo globular clusters that have recently been proposed as a differentiator between Newtonian and MONDian dynamics.

Keywords

Cite

@article{arxiv.0902.1846,
  title  = {Testing fundamental physics with distant star clusters: theoretical models for pressure-supported stellar systems},
  author = {Hosein Haghi and Holger Baumgardt and Pavel Kroupa and Eva K. Grebel and Michael Hilker and Katrin Jordi},
  journal= {arXiv preprint arXiv:0902.1846},
  year   = {2014}
}

Comments

11 pages, 9 figures, Accepted in MNRAS

R2 v1 2026-06-21T12:10:08.047Z