Super-Earth ingestion can explain the anomalously high metal abundances of M67 Y2235
arXiv:1908.06988 · doi:10.1093/mnras/stz3169
Abstract
We investigate the hypothesis that ingestion of a terrestrial or super-Earth planet could cause the anomalously high metal abundances seen in a turn-off star in the open cluster M67, when compared to other turn-off stars in the same cluster. We show that the mass in convective envelope of the star is likely only , and hence of rock is required to obtain the observed 0.128 dex metal enhancement. Rocky planets dissolve entirely in the convective envelope if they enter it with sufficiently tangential orbits: we find that the critical condition for dissolution is that the planet's radial speed must be less than 40% of its total velocity at the stellar surface; or, equivalently, the impact parameter must be greater than about 0.9. We model the delivery of rocky planets to the stellar surface both by planet-planet scattering in a realistic multi-planet system, and by Lidov-Kozai cycles driven by a more massive planetary or stellar companion. In both cases almost all planets that are ingested arrive at the star on grazing orbits and hence will dissolve in the surface convection zone. We conclude that super-Earth ingestion is a good explanation for the metal enhancement in M67 Y2235, and that a high-resolution spectroscopic survey of stellar abundances around the turn-off and main sequence of M67 has the potential to constrain the frequency of late-time dynamical instability in planetary systems.
12 pages, 10 figures, submitted to MNRAS
References in corpus (15)
- Tidal Evolution of Close-in Extra-Solar Planets
- Radial velocity planets de-aliased. A new, short period for Super-Earth 55 Cnc e
- Abundances of four open clusters from solar stars
- Accounting for Incompleteness due to Transit Multiplicity in Kepler Planet Occurrence Rates
- Direct detection of exoplanet host star companion gamma Cep B and revised masses for both stars and the sub-stellar object
- Chemical Abundances of Main-Sequence, Turnoff, Subgiant and red giant Stars from APOGEE spectra II: Atomic Diffusion in M67 Stars
- The chemical compositions of solar twins in the open cluster M67
- A high precision chemical abundance analysis of the HAT-P-1 stellar binary: constraints on planet formation
- Chemical (in)homogeneity and atomic diffusion in the open cluster M67
- Detailed Abundances of Planet-Hosting Wide Binaries. I. Did Planet Formation Imprint Chemical Signatures in the Atmospheres of HD 20782/81?
- The instability of planetary systems in binaries: how the Kozai mechanism leads to strong planet-planet interactions
- Dynamical behaviour of multiplanet systems close to their stability limit
- The Solar Twin Planet Search. V. Close-in, low-mass planet candidates and evidence of planet accretion in the solar twin HIP 68468
- Perturbation of Compact Planetary Systems by Distant Giant Planets
- Fly-by encounters between two planetary systems I: solar system analogues
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