A halo of trapped interstellar matter surrounding the solar system
arXiv:2206.08535 · doi:10.1093/mnras/stac3642
Abstract
This paper shows that gravitating bodies travelling through the Galaxy can trap lighter interstellar particles that pass nearby with small relative velocities onto temporarily-bound orbits. The capture mechanism is driven by the Galactic tidal field, which can decelerate infalling objects to a degree where their binding energy becomes negative. Over time, trapped particles build a local overdensity -- or `halo'-- that reaches a steady state as the number of particles being captured equals that being tidally stripped. This paper uses classical stochastic techniques to calculate the capture rate and the phase-space distribution of particles trapped by a point-mass. In a steady state, bound particles generate a density enhancement that scales as (a.k.a `density spike') and follow a velocity dispersion profile . Collisionless -body experiments show excellent agreement with these theoretical predictions within a distance range , where is the thermal critical radius of a point-mass moving with a speed through a sea of particles with a velocity dispersion . Preliminary estimates that ignore collisions with planets and Galactic substructures suggest that the solar system may be surrounded by a halo that contains the order of energetically-bound 'Oumuamua-like objects, and a dark matter mass of . The presence of trapped interstellar matter in the solar system can affect current estimates on the size of the Oort Cloud, and leave a distinct signal in direct dark matter detection experiments.
26 pages, 10 figures. Accepted to MNRAS
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- Stellar Mass Segregation in Dark Matter Halos
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