Forming Iron-rich Planets with Giant Impacts
arXiv:2204.04925 · doi:10.1093/mnras/stac1853
Abstract
We investigate mantle stripping giant impacts (GI) between super-Earths with masses between 1 M and 20 M. We infer new scaling laws for the mass of the largest fragment and its iron mass fraction, as well as updated fitting coefficients for the critical specific impact energy for catastrophic disruption, . With these scaling laws, we derive equations that relate the impact conditions, i.e., target mass, impact velocity and impactor-to-target mass ratio, to the mass and iron mass fraction of the largest fragment. This allows one to predict collision outcomes without performing a large suite of simulations. Using these equations we present the maximum and minimum planetary iron mass fraction as a result of collisional stripping of its mantle for a given range of impact conditions. We also infer the radius for a given mass and composition using interior structure models and compare our results to observations of metal-rich exoplanets. We find good agreement between the data and the simulated planets suggesting that GI could have played a key role in their formation. Furthermore, using our scaling laws we can further constrain the impact conditions that favour their masses and compositions. Finally, we present a flexible and easy-to-use tool that allows one to predict mass and composition of a planet after a GI for an arbitrary range of impact conditions which in turn allows to assess the role of GI in observed planetary systems.
12 pages, 9 figures, 1 table, accepted for publication in MNRAS
References in corpus (19)
- Array Programming with NumPy
- Most 1.6 Earth-Radius Planets are not Rocky
- KEPLER's First Rocky Planet: Kepler-10b
- Detailed Models of super-Earths: How well can we infer bulk properties?
- Revisited Mass-Radius relations for exoplanets below 120 Earth masses
- The Occurrence of Rocky Habitable Zone Planets Around Solar-Like Stars from Kepler Data
- Collisional Stripping and Disruption of Super-Earths
- A giant impact as the likely origin of different twins in the Kepler-107 exoplanet system
- GJ 367b: A dense ultra-short period sub-Earth planet transiting a nearby red dwarf star
- Numerical aspects of Giant Impact simulations
- Chemical Diversity of Super-Earths As a Consequence of Formation
- Silicate Melting and Vaporization during Rocky Planet Formation
- Rocklines as Cradles for Refractory Solids in the Protosolar Nebula
- Atmospheric Erosion by Giant Impacts onto Terrestrial Planets: A Scaling Law for any Speed, Angle, Mass, and Density
- Hydrodynamic Escape of Mineral Atmosphere from Hot Rocky Exoplanet. I. Model Description
- Characterization of the K2-38 planetary system. Unraveling one of the densest planets known to date
- Dynamical avenues for Mercury's origin I: The lone survivor of a primordial generation of short-period proto-planets
- K2-291 b: A rocky super-Earth in a 2.2 day orbit
- The EOS/Resolution Conspiracy: Convergence in Proto-Planetary Collision Simulations
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- The Curie line in protoplanetary disks and the formation of Mercury-like planets
- A scaling relation for core heating by giant impacts and implications for dynamo onset
- On the origin of Jupiter's fuzzy core: constraints from N-body, impact and evolution simulations
- In-depth characterization of the Kepler-10 three-planet system with HARPS-N radial velocities and Kepler transit timing variations
- Can metal-rich worlds form by giant impacts?
- Exploring the catastrophic regime: thermodynamics and disintegration in head-on planetary collisions
- The possibility of a giant impact on Venus
- The Influence of Central Body Tides on Catastrophic Disruptions of Close-in Planetary Satellites
- Runaway Growth of Planetesimals Revisited: Presenting Criteria Required for Realistic Modeling of Planetesimal Growth
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