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Non-linear hydrodynamics of axion dark matter: relative velocity effects and "quantum forces"

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abstract

The non-linear hydrodynamic equations for axion/scalar field dark matter (DM) in the non-relativistic Madelung-Shcr\"{o}dinger form are derived in a simple manner, including the effects of universal expansion and Hubble drag. The hydrodynamic equations are used to investigate the relative velocity between axion DM and baryons, and the moving-background perturbation theory (MBPT) derived. Axions massive enough to be all of the DM do not affect the coherence length of the relative velocity, but the MBPT equations are modified by the inclusion of the axion effective sound speed. These MBPT equations are necessary for accurately modelling the effects of axion DM on the formation of the first cosmic structures, and suggest that the 21cm power spectrum could improve constraints on axion mass by up to four orders of magnitude with respect to the current best constraints. A further application of these results uses the "quantum force" analogy to model scalar field gradient energy in a smoothed-particle hydrodynamics model of axion DM. Such a model can treat axion DM in the non-linear regime and could be incorporated into existing N-body codes.

fields

hep-th 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Screened Axio-dilaton Cosmology: Novel Forms of Early Dark Energy

hep-th · 2025-05-08 · conditional · novelty 7.0

A screened axio-dilaton dark energy model produces a self-terminating early dark energy phase from axion-matter couplings, reaching a few percent of the total density, and stronger dilaton-matter couplings decrease the growth of cosmic structure.

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  • Screened Axio-dilaton Cosmology: Novel Forms of Early Dark Energy hep-th · 2025-05-08 · conditional · none · ref 67 · internal anchor

    A screened axio-dilaton dark energy model produces a self-terminating early dark energy phase from axion-matter couplings, reaching a few percent of the total density, and stronger dilaton-matter couplings decrease the growth of cosmic structure.