Dust formation in the outflows of catastrophically evaporating planets
arXiv:2204.13117 · doi:10.1093/mnras/stac3121
Abstract
Ultra-short period planets offer a window into the poorly understood interior composition of exoplanets through material evaporated from their rocky interiors. Among these objects are a class of disintegrating planets, observed when their dusty tails transit in front of their host stars. These dusty tails are thought to originate from dust condensation in thermally-driven winds emanating from the sublimating surfaces of these planets. Existing models of these winds have been unable to explain their highly variable nature and have not explicitly modelled how dust forms in the wind. Here we present new radiation-hydrodynamic simulations of the winds from these planets, including a minimal model for the formation and destruction of dust, assuming that nucleation can readily take place. We find that dust forms readily in the winds, a consequence of large dust grains obtaining lower temperatures than the planet's surface. As hypothesised previously, we find that the coupling of the planet's surface temperature to the outflow properties via the dust's opacity can drive time-variable flows when dust condensation is sufficiently fast. In agreement with previous work, our models suggest that these dusty tails are a signature of catastrophically evaporating planets that are close to the end of their lives. Finally, we discuss the implications of our results for the dust's composition. More detailed hydrodynamic models that self-consistently compute the nucleation and composition of the dust and gas are warranted in order to use these models to study the planet's interior composition.
15 pages. Authors accepted version, to be published in MNRAS
References in corpus (19)
- Detailed Models of super-Earths: How well can we infer bulk properties?
- A generalized bayesian inference method for constraining the interiors of super Earths and sub-Neptunes
- Chemistry of Silicate Atmospheres of Evaporating Super-Earths
- Theoretical Emission Spectra of Atmospheres of Hot Rocky Super-Earths
- Linking the Climate and Thermal Phase Curve of 55 Cancri e
- Evidence for the disintegration of KIC 12557548 b
- ExoMol line lists -- XLIV. IR and UV line list for silicon monoxide (SiO)
- Dusty tails of evaporating exoplanets. I. Constraints on the dust composition
- CHEOPS Precision Phase Curve of the Super-Earth 55 Cnc e
- Alkali metals in white dwarf atmospheres as tracers of ancient planetary crusts
- ExoMol line lists - XXXII. The rovibronic spectrum of MgO
- Bayesian constraints on the origin and geology of exo-planetary material using a population of externally polluted white dwarfs
- Modelling the atmosphere of lava planet K2-141b: implications for low and high resolution spectroscopy
- Convection in Condensible-rich Atmospheres
- Snow-lines can be thermally unstable
- Hydrodynamic Escape of Mineral Atmosphere from Hot Rocky Exoplanet. I. Model Description
- Dusty tails of evaporating exoplanets. II. Physical modelling of the KIC 12557548b light curve
- Herschel/PACS observations of the 69 band of crystalline olivine around evolved stars
- LBT Reveals Large Dust Particles and a High Mass Loss Rate for K2-22 b
Cited by in corpus (10)
- Super-Earths and Earth-like Exoplanets
- Aiolos- A multi-purpose 1-D hydrodynamics code for planetary atmospheres
- The evolution of catastrophically evaporating rocky planets
- Chaotic winds from a dying world: a one-dimensional map for evolving atmospheres
- DMPP-3: confirmation of short-period S-type planet(s) in a compact eccentric binary star system, and warnings about long-period RV planet detections
- Extreme Weather Variability on Hot Rocky Exoplanet 55 Cancri e Explained by Magma Temperature-Cloud Feedback
- A Disintegrating Rocky World Shrouded in Dust and Gas: Mid-IR Observations of K2-22b using JWST
- Chemical evolution of an evaporating lava pool
- Climate Change in Hell: Long-Term Variation in Transits of the Evaporating Planet K2-22b
- Characterizing the bolometric-photoevaporative transition in young sub-Neptunes with radiation-hydrodynamic simulations