Interior structure models of GJ 436b
arXiv:1002.4447 · doi:10.1051/0004-6361/200911985
Abstract
GJ 436b is the first extrasolar planet discovered that resembles Neptune in mass and radius. The particularly interesting property of Neptune-sized planets is that their mass Mp and radius Rp are close to theoretical M-R relations of water planets. Given Mp, Rp, and equilibrium temperature, however, various internal compositions are possible. A broad set of interior structure models is presented here that illustrates the dependence of internal composition and possible phases of water occurring in presumably water-rich planets, such as GJ 436b on the uncertainty in atmospheric temperature profile and mean density. We show how the set of solutions can be narrowed down if theoretical constraints from formation and model atmospheres are applied or potentially observational constraints for the atmospheric metallicity Z1 and the tidal Love number k2. We model the interior by assuming either three layers (hydrogen-helium envelope, water layer, rock core) or two layers (H/He/H2O envelope, rocky core). For water, we use the equation of state H2O-REOS based on FT-DFT-MD simulations. Some admixture of H/He appears mandatory for explaining the measured radius. For the warmest considered models, the H/He mass fraction can reduce to 10^-3, still extending over ~0.7 REarth. If water occurs, it will be essentially in the plasma phase or in the superionic phase, but not in an ice phase. Metal-free envelope models have 0.02<k2<0.2, and the core mass cannot be determined from a measurement of k2. In contrast, models with 0.3<k2<0.82 require high metallicities Z1<0.89 in the outer envelope. The uncertainty in core mass decreases to 0.4 Mp, if k2>0.3, and further to 0.2 Mp, if k2>0.5, and core mass and Z1 become sensitive functions of k2. To further narrow the set of solutions, a proper treatment of the atmosphere and the evolution is necessary.
9 pages, accepted to A&A
References in corpus (26)
- Mass-Radius Relationships for Solid Exoplanets
- A super-Earth transiting a nearby low-mass star
- Transiting exoplanets from the CoRoT space mission VIII. CoRoT-7b: the first Super-Earth with measured radius
- Improved parameters for extrasolar transiting planets
- Roche lobe effects on the atmospheric loss of "Hot Jupiters"
- Tidal Evolution of Close-in Extra-Solar Planets
- The Interior Structure, Composition, and Evolution of Giant Planets
- Is tidal heating sufficient to explain bloated exoplanets? Consistent calculations accounting for finite initial eccentricity
- A Framework for Quantifying the Degeneracies of Exoplanet Interior Compositions
- Possible thermochemical disequilibrium in the atmosphere of the exoplanet GJ 436b
- Theoretical Spectra and Light Curves of Close-in Extrasolar Giant Planets and Comparison with Data
- Ab initio Equation of State data for hydrogen, helium, and water and the internal structure of Jupiter
- Three Possible Origins for the Gas Layer on GJ 1214b
- The Atmospheric Signatures of Super-Earths: How to Distinguish Between Hydrogen-Rich and Hydrogen-Poor Atmospheres
- Ocean Planet or Thick Atmosphere: On the Mass-Radius Relationship for Solid Exoplanets with Massive Atmospheres
- Spitzer Transit and Secondary Eclipse Photometry of GJ 436b
- Atmospheric Circulation of Eccentric Hot Neptune GJ436b
- Accurate Spitzer infrared radius measurement for the hot Neptune GJ 436b
- The M Dwarf GJ 436 and its Neptune-Mass Planet
- Determination of the Interior Structure of Transiting Planets in Multiple-Planet Systems
- Characterization of the hot Neptune GJ 436b with Spitzer and ground-based observations
- Metallicities of M Dwarf Planet Hosts from Spectral Synthesis
- A ~5 M_earth Super-Earth Orbiting GJ 436?: The Power of Near-Grazing Transits
- A Hubble Space Telescope transit light curve for GJ436b
- Models of Neptune-Mass Exoplanets: Emergent Fluxes and Albedos
- New Observations and a Possible Detection of Parameter Variations in the Transits of Gliese 436b
Cited by in corpus (29)
- A featureless transmission spectrum for the Neptune-mass exoplanet GJ 436b
- A Framework for Characterizing the Atmospheres of Low-Mass Low-Density Transiting Planets
- The Deuterium-Burning Mass Limit for Brown Dwarfs and Giant Planets
- Compositional diversity in the atmospheres of hot Neptunes, with application to GJ 436b
- Exoplanetary Atmospheres - Chemistry, Formation Conditions, and Habitability
- Thermal evolution and structure models of the transiting super-Earth GJ 1214b
- Exoplanet Biosignatures: Observational Prospects
- Probing the interiors of the ice giants: Shock compression of water to 700 GPa and 3.8 g/ccm
- Forward and Inverse Modeling of the Emission and Transmission Spectrum of GJ 436b: Investigating Metal Enrichment, Tidal Heating, and Clouds
- Thermochemistry and Photochemistry in Cooler Hydrogen Dominated Extrasolar Planets: The Case of GJ436b
- A Spitzer Transmission Spectrum for the Exoplanet GJ 436b, Evidence for Stellar Variability, and Constraints on Dayside Flux Variations
- Methane in the atmosphere of the transiting hot Neptune GJ436b?
- Probing the Blow-Off Criteria of Hydrogen-Rich "Super-Earths"
- The effect of Lyman radiation on mini-Neptune atmospheres around M stars: application to GJ 436b
- The Structure of Exoplanets
- The puzzling chemical composition of GJ 436b's atmosphere: influence of tidal heating on the chemistry
- Spitzer Secondary Eclipse Observations of Five Cool Gas Giant Planets and Empirical Trends in Cool Planet Emission Spectra
- On the degeneracy of the tidal Love number k2 in multi-layer planetary models: application to Saturn and GJ436b
- Coupled Thermal and Compositional Evolution of Photo Evaporating Planet Envelopes
- Plausible Compositions of the Seven TRAPPIST-1 Planets Using Long-term Dynamical Simulations
- Metallization of Shock-Compressed Liquid Ammonia
- Young Exoplanet Transit Initiative (YETI)
- Matrix-propagator approach to compute fluid Love numbers and applicability to extrasolar planets
- Heating and ionization by non-thermal electrons in the upper atmospheres of water-rich exoplanets
- Predictions on the core mass of Jupiter and of giant planets in general
- Peering above the clouds of the warm Neptune GJ 436b with CRIRES+
- Constraining the volatile fraction of planets from transit observations
- Tighter constraints on the atmosphere of GJ 436 b from combined high-resolution CARMENES and CRIRES observations
- Exploring Exoplanet Dynamics with JWST: Tides, Rotation, Rings, and Moons