Efficiency of Planetesimal Ablation in Giant Planetary Envelopes
arXiv:1609.02143 · doi:10.1093/mnras/stw2239
Abstract
Observations of exoplanetary spectra are leading to unprecedented constraints on their atmospheric elemental abundances, particularly O/H, C/H, and C/O ratios. Recent studies suggest that elemental ratios could provide important constraints on formation and migration mechanisms of giant exoplanets. A fundamental assumption in such studies is that the chemical composition of the planetary envelope represents the sum-total of compositions of the accreted gas and solids during the formation history of the planet. We investigate the efficiency with which accreted planetesimals ablate in a giant planetary envelope thereby contributing to its composition rather than sinking to the core. From considerations of aerodynamic drag causing `frictional ablation' and the envelope temperature structure causing `thermal ablation', we compute mass ablations for impacting planetesimals of radii 30 m to 1 km for different compositions (ice to iron) and a wide range of velocities and impact angles, assuming spherical symmetry. Icy impactors are fully ablated in the outer envelope for a wide range of parameters. Even for Fe impactors substantial ablation occurs in the envelope for a wide range of sizes and velocities. For example, iron impactors of sizes below ~0.5 km and velocities above ~30 km/s are found to ablate by ~60-80% within the outer envelope at pressures below 10^3 bar due to frictional ablation alone. For deeper pressures (~10^7 bar), substantial ablation happens over a wider range of parameters. Therefore, our exploratory study suggests that atmospheric abundances of volatile elements in giant planets reflect their accretion history during formation.
17 pages, 11 figures; Accepted for publication in MNRAS
References in corpus (10)
- Towards Chemical Constraints on Hot Jupiter Migration
- Pollution of single white dwarfs by accretion of many small asteroids
- Ab initio equations of state for hydrogen (H-REOS.3) and helium (He-REOS.3) and their implications for the interior of Brown Dwarfs
- H2O abundances in the atmospheres of three hot Jupiters
- Global Models of Planet Formation and Evolution
- Disk evolution, element abundances and cloud properties of young gas giant planets
- From stellar nebula to planetesimals
- Strict Upper Limits on the Carbon-to-Oxygen Ratios of Eight Hot Jupiters from Self-Consistent Atmospheric Retrieval
- Shoemaker-Levy 9 Impact Modeling: I. High-Resolution 3D Bolides
- Numerical Modeling of the 2009 Impact Event on Jupiter
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- C/O and O/H Ratios Suggest Some Hot Jupiters Originate Beyond the Snow Line
- The Metal-Rich Atmosphere of the Neptune HAT-P-26b
- How planets grow by pebble accretion IV: Envelope opacity trends from sedimenting dust and pebbles