Survival of habitable planets in unstable planetary systems
arXiv:1605.01325 · doi:10.1093/mnras/stw2218
Abstract
Many observed giant planets lie on eccentric orbits. Such orbits could be the result of strong scatterings with other giant planets. The same dynamical instability that produces these scatterings may also cause habitable planets in interior orbits to become ejected, destroyed, or be transported out of the habitable zone. We say that a habitable planet has resilient habitability if it is able to avoid ejections and collisions and its orbit remains inside the habitable zone. Here we model the orbital evolution of rocky planets in planetary systems where giant planets become dynamically unstable. We measure the resilience of habitable planets as a function of the observed, present-day masses and orbits of the giant planets. We find that the survival rate of habitable planets depends strongly on the giant planet architecture. Equal-mass planetary systems are far more destructive than systems with giant planets of unequal masses. We also establish a link with observation; we find that giant planets with present-day eccentricities higher than 0.4 almost never have a habitable interior planet. For a giant planet with an present-day eccentricity of 0.2 and semimajor axis of 5 AU orbiting a Sun-like star, 50% of the orbits in the habitable zone are resilient to the instability. As semimajor axis increases and eccentricity decreases, a higher fraction of habitable planets survive and remain habitable. However, if the habitable planet has rocky siblings, there is a significant risk of rocky planet collisions that would sterilize the planet.
Accepted to MNRAS
References in corpus (5)
- Habitable planets around the star Gl 581?
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- Habitable Climates: The Influence of Eccentricity
- Effects of Extreme Obliquity Variations on the Habitability of Exoplanets
- Predictions for the correlation between giant and terrestrial extrasolar planets in dynamically evolved systems
Cited by in corpus (31)
- A giant exoplanet orbiting a very low-mass star challenges planet formation models
- The effects of external planets on inner systems: multiplicities, inclinations, and pathways to eccentric warm Jupiters
- Planet-planet scattering as the source of the highest eccentricity exoplanets
- A terrestrial-mass rogue planet candidate detected in the shortest-timescale microlensing event
- Eccentricities and Inclinations of Multi-Planet Systems with External Perturbers
- Dynamically hot Super-Earths from outer giant planet scattering
- Fly-by encounters between two planetary systems I: solar system analogues
- Innocent Bystanders: Orbital Dynamics of Exomoons during Planet-Planet Scattering
- Checking the Compatibility of the Cold Kuiper Belt with a Planetary Instability Migration Model
- Strong Scatterings of Cold Jupiters and their Influence on Inner Low-mass Planet Systems: Theory and Simulations
- Formation of Terrestrial Planets
- The dynamical evolution of transiting planetary systems including a realistic collision prescription
- Giant planets: good neighbors for habitable worlds?
- In the Presence of a Wrecking Ball: Orbital Stability in the HR 5183 System
- Prospecting for exo-Earths in multiple planet systems with a gas giant
- Exciting spiral arms in protoplanetary discs from flybys
- Predicting multiple planet stability and habitable zone companions in the TESS era
- Properties of the single Jovian planet population and the pursuit of Solar system analogues
- Stable habitable zones of single Jovian planet systems
- Stellar encounters with giant molecular clouds
- Resilient habitability of nearby exoplanet systems
- Inclination Dynamics of Resonant Planets under the Influence of an Inclined External Companion
- The Impact of Stellar Clustering on the Observed Multiplicity of Super-Earth systems: Outside-in Cascade of Orbital Misalignments Initiated by Stellar Flybys
- Mid-infrared time-domain study of recent dust production events in the extreme debris disc of TYC 4209-1322-1
- Exoplanet Occurrence Rates from Microlensing Surveys
- Planet formation: key mechanisms and global models
- Production of hot Jupiter candidates from high-eccentricity mechanisms for different initial planetary mass configurations
- Toward an initial mass function for giant planets
- Formation of terrestrial planets in eccentric and inclined giant planet systems
- Effects of capturing a wide-orbit planet on planetary systems: system stability and Habitable Zone bombardment rates
- Dynamical orbital evolution scenarios of the wide-orbit eccentric planet HR 5183b