2014Physics of the Dark UniverseOpen access

A dark matter scaling relation from mirror dark matter

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Abstract

Mirror dark matter, and other similar dissipative dark matter candidates, need an energy source to stabilize dark matter halos around spiral galaxies. It has been suggested previously that ordinary supernovae can potentially supply the required energy. By matching the energy supplied to the halo from supernovae to that lost due to radiative cooling, we here derive a rough scaling relation, RSN∝ρ0r02 (RSN is the supernova rate and ρ0,r0 the dark matter central density and core radius). Such a relation is consistent with dark matter properties inferred from studies of spiral galaxies with halo masses larger than 3×1011M⊙. We speculate that other observed galaxy regularities might be explained within the framework of such dissipative dark matter.

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Mirror dark matter, and other similar dissipative dark matter candidates, need an energy source to stabilize dark matter halos around spiral galaxies. It has been suggested previously that ordinary supernovae can potentially supply the required energy. By matching the energy supplied to the halo from supernovae to that lost due to radiative cooling, we here derive a rough scaling relation, RSN∝ρ0r02 (RSN is the supernova rate and ρ0,r0 the dark matter central density and core radius). Such a relation is consistent with dark matter properties inferred from studies of spiral galaxies with halo masses larger than 3×1011M⊙. We speculate that other observed galaxy regularities might be explained within the framework of such dissipative dark matter.

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Available abstract

Mirror dark matter, and other similar dissipative dark matter candidates, need an energy source to stabilize dark matter halos around spiral galaxies. It has been suggested previously that ordinary supernovae can potentially supply the required energy. By matching the energy supplied to the halo from supernovae to that lost due to radiative cooling, we here derive a rough scaling relation, RSN∝ρ0r02 (RSN is the supernova rate and ρ0,r0 the dark matter central density and core radius). Such a relation is consistent with dark matter properties inferred from studies of spiral galaxies with halo masses larger than 3×1011M⊙. We speculate that other observed galaxy regularities might be explained within the framework of such dissipative dark matter.

Key concepts: Physics, Astrophysics, Dark matter halo, Dark matter, Scalar field dark matter, Hot dark matter, Light dark matter, Dark fluid

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