Survivor bias: divergent fates of the Solar System's ejected vs. persisting planetesimals
arXiv:2010.15147 · doi:10.3847/2041-8213/abc55f
Abstract
The orbital architecture of the Solar System is thought to have been sculpted by a dynamical instability among the giant planets. During the instability a primordial outer disk of planetesimals was destabilized and ended up on planet-crossing orbits. Most planetesimals were ejected into interstellar space but a fraction were trapped on stable orbits in the Kuiper belt and Oort cloud. We use a suite of N-body simulations to map out the diversity of planetesimals' dynamical pathways. We focus on two processes: tidal disruption from very close encounters with a giant planet, and loss of surface volatiles from repeated passages close to the Sun. We show that the rate of tidal disruption is more than a factor of two higher for ejected planetesimals than for surviving objects in the Kuiper belt or Oort cloud. Ejected planetesimals are preferentially disrupted by Jupiter and surviving ones by Neptune. Given that the gas giants contracted significantly as they cooled but the ice giants did not, taking into account the thermal evolution of the giant planets decreases the disruption rate of ejected planetesimals. The frequency of volatile loss and extinction is far higher for ejected planetesimals than for surviving ones and is not affected by the giant planets' contraction. Even if all interstellar objects were ejected from Solar System-like systems, our analysis suggests that their physical properties should be more diverse than those of Solar System small bodies as a result of their divergent dynamical histories. This is consistent with the characteristics of the two currently-known interstellar objects.
ApJ Letters, in press. 6 pages, 4 figures
References in corpus (13)
- On the Luminosity of Young Jupiters
- Dynamics of the giant planets of the solar system in the gaseous proto-planetary disk and relationship to the current orbital architecture
- The timeline of the Lunar bombardment - revisited
- Origin and Evolution of Short-Period Comets
- Spectroscopy and thermal modelling of the first interstellar object 1I/2017 U1 'Oumuamua
- The Natural History of 'Oumuamua
- Dynamical evidence for an early giant planet instability
- Injection of Oort Cloud Comets: The Fundamental Role of Stellar Perturbations
- Constraining the giant planets' initial configuration from their evolution: implications for the timing of the planetary instability
- Evidence that 1I/2017 U1 (`Oumuamua) was composed of molecular hydrogen ice
- The Orbit and Size-Frequency Distribution of Long Period Comets Observed by Pan-STARRS1
- Activity of 50 Long-Period Comets Beyond 5.2 AU
- Simulations of the Fomalhaut System Within Its Local Galactic Environment
Cited by in corpus (12)
- Thermal processing of Jupiter Family Comets during their chaotic orbital evolution
- Significant interstellar object production by close stellar flybys
- How the origin of stars in the Galaxy impacts the composition of planetary building blocks
- Predicting the water content of interstellar objects from galactic star formation histories
- Interstellar planetesimals: potential seeds for planet formation?
- Inferring Late Stage Enrichment of Exoplanet Atmospheres from Observed Interstellar Comets
- On averaging eccentric orbits: Implications for the long-term thermal evolution of comets
- Fitting the Light Curve of 1I/`Oumuamua with a Nonprincipal Axis Rotational Model and Outgassing Torques
- The New Astronomical Frontier of Interstellar Objects
- Evolution of Primordial Kuiper Belt Binaries Through a Giant Planet Instability
- Configuration of Single Giant Planet Systems Generating `Oumuamua-Like Interstellar Asteroids
- Machine Learning Methods for Automated Interstellar Object Classification with LSST