English

NEO Population, Velocity Bias, and Impact Risk from an ATLAS Analysis

Earth and Planetary Astrophysics 2020-12-14 v1

Abstract

We estimate the total population of near-Earth objects (NEOs) in the Solar System, using an extensive, `Solar System to pixels' fake-asteroid simulation to debias detections of real NEOs by the ATLAS survey. Down to absolute magnitudes H=25H=25 and 27.6 (diameters of 34\sim 34 and 10 meters, respectively, for 15% albedo), we find total populations of (3.72±0.49)×105(3.72 \pm 0.49) \times 10^5 and (1.59±0.45)×107(1.59 \pm 0.45) \times 10^7 NEOs, respectively. Most plausible sources of error tend toward underestimation, so the true populations are likely larger. We find the distribution of HH magnitudes steepens for NEOs fainter than H22.5H \sim 22.5, making small asteroids more common than extrapolation from brighter HH mags would predict. Our simulation indicates a strong bias against detecting small but dangerous asteroids that encounter Earth with high relative velocities -- i.e., asteroids in highly inclined and/or eccentric orbits. Worldwide NEO discovery statistics indicate this bias affects global NEO detection capability, to the point that an observational census of small asteroids in such orbits is probably not currently feasible. Prompt and aggressive followup of NEO candidates, combined with closer collaborations between segments of the global NEO community, can increase detection rates for these dangerous objects.

Keywords

Cite

@article{arxiv.2012.06042,
  title  = {NEO Population, Velocity Bias, and Impact Risk from an ATLAS Analysis},
  author = {A. N. Heinze and Larry Denneau and John L. Tonry and Steven J. Smartt and Nicolas Erasmus and Alan Fitzsimmons and James E. Robinson and Henry Weiland and Heather Flewelling and Brian Stalder and Armin Rest and David R. Young},
  journal= {arXiv preprint arXiv:2012.06042},
  year   = {2020}
}

Comments

23 pages, 11 figures, accepted by the Planetary Science Journal