Susceptibility of planetary atmospheres to mass loss and growth by planetesimal impacts: the impact shoreline
arXiv:1910.10731 · doi:10.1093/mnras/stz3052
Abstract
This paper considers how planetesimal impacts affect planetary atmospheres. Atmosphere evolution depends on the ratio of gain from volatiles to loss from atmosphere stripping f_v; for constant bombardment, atmospheres with f_v<1 are destroyed in finite time, but grow linearly with time for f_v>1. An impact outcome prescription is used to characterise how f_v depends on planetesimal impact velocities, size distribution and composition. Planets that are low mass and/or close to the star have atmospheres that deplete in impacts, while high mass and/or distant planets grow secondary atmospheres. Dividing these outcomes is an fv=1 impact shoreline analogous to Zahnle & Catling's cosmic shoreline. The impact shoreline's location depends on assumed impacting planetesimal properties, so conclusions for the atmospheric evolution of a planet like Earth with f_v~1 are only as strong as those assumptions. Application to the exoplanet population shows the gap in the planet radius distribution at ~1.5R_earth is coincident with the impact shoreline, which has a similar dependence on orbital period and stellar mass to the observed gap. Given sufficient bombardment, planets below the gap would be expected to lose their atmospheres, while those above could have atmospheres enhanced in volatiles. The level of atmosphere alteration depends on the total bombardment a planet experiences, and so on the system's (usually unknown) other planets and planetesimals, though massive distant planets would have low accretion efficiency. Habitable zone planets around lower luminosity stars are more susceptible to atmosphere stripping, disfavouring M stars as hosts of life-bearing planets if Earth-like bombardment is conducive to the development of life.
Accepted for publication by MNRAS
References in corpus (9)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- Most 1.6 Earth-Radius Planets are not Rocky
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- The timeline of the Lunar bombardment - revisited
- How to Characterize Habitable Worlds and Signs of Life
- Ranges of Atmospheric Mass and Composition of Super Earth Exoplanets
- Atmospheric Mass Loss During Planet Formation: The Importance of Planetesimal Impacts
- Reconstructing the late accretion history of the Moon
- The habitability of stagnant-lid Earths around dwarf stars
Cited by in corpus (31)
- The California-Kepler Survey. X. The Radius Gap as a Function of Stellar Mass, Metallicity, and Age
- Photoevaporation vs. core-powered mass-loss: model comparison with the 3D radius gap
- Occurrence Rates of Planets Orbiting M Stars: Applying ABC to Kepler DR25, Gaia DR2, and 2MASS Data
- Conclusive evidence for a population of water-worlds around M-dwarfs remains elusive
- Atmospheric Regimes and Trends on Exoplanets and Brown Dwarfs
- Testing exoplanet evaporation with multi-transiting systems
- Insights into the planetary dynamics of HD 206893 with ALMA
- The K2-3 system revisited: testing photoevaporation and core-powered mass loss with three small planets spanning the radius valley
- Evolution of the Earth's Atmosphere during Late Veneer Accretion
- Using helium 10830 Å transits to constrain planetary magnetic fields
- Role of magma oceans in controlling carbon and oxygen of sub-Neptune atmospheres
- Where are the Water Worlds?: Self-Consistent Models of Water-Rich Exoplanet Atmospheres
- The Variable Detection of Atmospheric Escape around the young, Hot Neptune AU Mic b
- The shared evaporation history of three sub-Neptunes spanning the radius-period valley of a Hyades star
- Population-level Hypothesis Testing with Rocky Planet Emission Data: A Tentative Trend in the Brightness Temperatures of M-Earths
- The Cosmic Shoreline Revisited: A Metric for Atmospheric Retention Informed by Hydrodynamic Escape
- Can comets deliver prebiotic molecules to rocky exoplanets?
- Inferring Late Stage Enrichment of Exoplanet Atmospheres from Observed Interstellar Comets
- TOI-908: a planet at the edge of the Neptune desert transiting a G-type star
- The Fate of Oceans on First-Generation Planets Orbiting White Dwarfs
- Review and prospects of hot exozodiacal dust research for future exo-Earth direct imaging missions
- Absence of a Runaway Greenhouse Limit on Lava Planets
- Stellar rotation and its connection to the evolution of hydrogen-dominated atmospheres of exoplanets
- Three young planets around the K-dwarf K2-198: High-energy environment, evaporation history and expected future
- Takeout and Delivery: Erasing the Dusty Signature of Late-stage Terrestrial Planet Formation
- The Effect of Accretion Rate and Composition on the Structure of Ice-rich Super-Earths
- Precise Parameters from Bayesian SED Fitting Indicate Thermally-Driven Mass Loss Likely Driver of Radius Valley
- Atmosphere Loss by Aerial Bursts
- An Evolving Cosmic Shoreline and Sandbar Bounding the Rocky Airless Valley
- Comparing Monte Carlo Models of Impact Alteration of Planetary Atmospheres
- Re-accretion of Giant Impact Ejecta Can Drive Significant Atmospheric Erosion on Terrestrial Planets