4.7 Article

Dust accretion in binary systems: implications for planets and transition discs

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stz2404

关键词

accretion, accretion discs; hydrodynamics; planets and satellites: formation; protoplanetary discs; binaries: general

资金

  1. St John's College, Cambridge
  2. Cambridge Commonwealth Trust
  3. DISCSIM project - European Research Council [341137]
  4. European Union's Horizon 2020 research and innovation programme under the Marie Sklodowska-Curie grant [823823]
  5. BIS National E-infrastructure capital grant [ST/J005673/1]
  6. STFC [ST/H008586/1, ST/K00333X/1]
  7. BEIS capital funding via STFC capital grants [ST/K000373/1, ST/R002363/1]
  8. BEIS capital funding via STFC DiRAC Operations grant [ST/R001014/1]
  9. STFC [ST/T001550/1, ST/T001348/1, ST/T001569/1, ST/R001014/1, ST/M006948/1, ST/M007073/1, ST/R001006/1, ST/M007006/1, ST/M007065/1, ST/S002529/1, ST/T001372/1, ST/R00689X/1, ST/S000623/1, ST/R000832/1, ST/M007618/1, ST/R001049/1] Funding Source: UKRI

向作者/读者索取更多资源

The presence of planets in binary systems poses interesting problems for planet formation theories, both in cases where planets must have formed in very compact discs around the individual stars and where they are located near the edge of the stable circumbinary region, where in situ formation is challenging. Dust dynamics is expected to play an important role in such systems, since dust trapping at the inner edge of circumbinary discs could aid in situ formation, but would simultaneously starve the circumstellar discs of the solid material needed to form planets. Here we investigate the dynamics of dust in binary systems using smoothed particle hydrodynamics. We find that all our simulations tend towards dust trapping in the circumbinary disc, but the time-scale on which trapping begins depends on binary mass ratio (q) and eccentricity as well as the angular momentum of the infalling material. For q greater than or similar to 0.1, we find that dust can initially accrete on to the circumstellar discs, but as the circumbinary cavity grows in radius, dust eventually becomes trapped in the circumbinary disc. For q = 0.01, we find that increasing the binary eccentricity increases the time required for dust trapping to begin. However, even this longer time-scale is likely to be shorter than the planet formation time-scale in the inner disc and is insufficient to explain the observed pre-transitional discs. This indicates that increase in companion eccentricity alone is not enough to allow significant transfer of solids from the outer to the inner disc.

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