Formation of compact systems of super-Earths via dynamical instabilities and giant impacts

Author:

Poon Sanson T S12,Nelson Richard P1,Jacobson Seth A3,Morbidelli Alessandro4

Affiliation:

1. Astronomy Unit, Queen Mary University of London, London E1 4NS, UK

2. Royal Observatory Greenwich, London SE10 9NF, UK

3. Earth and Planetary Sciences, Northwestern University, Evanston, Illinois 60208-3130, USA

4. Observatoire de la Côte d’Azur, Laboratoire Lagrange, Bd. de l’Observatoire, CS 34229, F-06304 Nice Cedex 4, France

Abstract

ABSTRACT The NASA’s Kepler mission discovered ∼700 planets in multiplanet systems containing three or more transiting bodies, many of which are super-Earths and mini-Neptunes in compact configurations. Using N-body simulations, we examine the in situ, final stage assembly of multiplanet systems via the collisional accretion of protoplanets. Our initial conditions are constructed using a subset of the Kepler five-planet systems as templates. Two different prescriptions for treating planetary collisions are adopted. The simulations address numerous questions: Do the results depend on the accretion prescription?; do the resulting systems resemble the Kepler systems, and do they reproduce the observed distribution of planetary multiplicities when synthetically observed?; do collisions lead to significant modification of protoplanet compositions, or to stripping of gaseous envelopes?; do the eccentricity distributions agree with those inferred for the Kepler planets? We find that the accretion prescription is unimportant in determining the outcomes. The final planetary systems look broadly similar to the Kepler templates adopted, but the observed distributions of planetary multiplicities or eccentricities are not reproduced, because scattering does not excite the systems sufficiently. In addition, we find that ∼1 per cent of our final systems contain a co-orbital planet pair in horseshoe or tadpole orbits. Post-processing the collision outcomes suggests that they would not significantly change the ice fractions of initially ice-rich protoplanets, but significant stripping of gaseous envelopes appears likely. Hence, it may be difficult to reconcile the observation that many low-mass Kepler planets have H/He envelopes with an in situ formation scenario that involves giant impacts after dispersal of the gas disc.

Funder

Queen Mary University of London

Science and Technology Facilities Council

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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1. The Instability Mechanism of Compact Multiplanet Systems;The Astrophysical Journal;2024-08-23

2. Protoplanet collisions: New scaling laws from smooth particle hydrodynamics simulations;Astronomy & Astrophysics;2024-05

3. Giant Impact Events for Protoplanets: Energetics of Atmospheric Erosion by Head-on Collision;The Astrophysical Journal;2023-09-01

4. Intra-system uniformity: a natural outcome of dynamical sculpting;Monthly Notices of the Royal Astronomical Society: Letters;2023-07-04

5. On the degree of dynamical packing in the Kepler multiplanet systems;Monthly Notices of the Royal Astronomical Society;2023-06-29

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