English

Tully-Fisher relation, galactic rotation curves and dissipative mirror dark matter

Astrophysics of Galaxies 2015-06-16 v2 Cosmology and Nongalactic Astrophysics High Energy Physics - Phenomenology

Abstract

If dark matter is dissipative then the distribution of dark matter within galactic halos can be governed by dissipation, heating and hydrostatic equilibrium. Previous work has shown that a specific model, in the framework of mirror dark matter, can explain several empirical galactic scaling relations. It is shown here that this dynamical halo model implies a quasi-isothermal dark matter density, ρ(r)=ρ0r02/(r2+r02)\rho (r) = \rho_0 r_0^2/(r^2 + r_0^2), where the core radius, r0r_0, scales with disk scale length, rDr_D, via r0/kpc=1.4(rD/kpc)r_0/{\rm kpc} = 1.4\left(r_D/{\rm kpc}\right). Additionally, the product ρ0r0\rho_0 r_0 is roughly constantconstant, i.e. independent of galaxy size (the constantconstant is set by the parameters of the model). The derived dark matter density profile implies that the galactic rotation velocity satisfies the Tully-Fisher relation, LBvmax3L_B \propto v^{3}_{max}, where vmaxv_{max} is the maximal rotational velocity. Examples of rotation curves resulting from this dynamics are given.

Keywords

Cite

@article{arxiv.1307.1755,
  title  = {Tully-Fisher relation, galactic rotation curves and dissipative mirror dark matter},
  author = {R. Foot},
  journal= {arXiv preprint arXiv:1307.1755},
  year   = {2015}
}

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