Thermodynamic Limits on Magnetodynamos in Rocky Exoplanets
arXiv:1005.3523 · doi:10.1088/0004-637X/718/2/596
Abstract
To ascertain whether magnetic dynamos operate in rocky exoplanets more massive or hotter than the Earth, we developed a parametric model of a differentiated rocky planet and its thermal evolution. Our model reproduces the established properties of Earth's interior and magnetic field at the present time. When applied to Venus, assuming that planet lacks plate tectonics and has a dehydrated mantle with an elevated viscosity, the model shows that the dynamo shuts down or never operated. Our model predicts that at a fixed planet mass, dynamo history is sensitive to core size, but not to the initial inventory of long-lived, heat-producing radionuclides. It predicts that rocky planets larger than 2.5 Earth masses will not develop inner cores because the temperature-pressure slope of the iron solidus becomes flatter than that of the core adiabat. Instead, iron "snow" will condense near or at the top of these cores, and the net transfer of latent heat upwards will suppress convection and a dynamo. More massive planets can have anemic dynamos due to core cooling, but only if they have mobile lids (plate tectonics). The lifetime of these dynamos is shorter with increasing planet mass but longer with higher surface temperature. Massive Venus-like planets with stagnant lids and more viscous mantles will lack dynamos altogether. We identify two alternative sources of magnetic fields on rocky planets: eddy currents induced in the hot or molten upper layers of planets on very short period orbits, and dynamos in the ionic conducting layers of "ocean" planets with ~10% mass in an upper mantle of water (ice).
Accepted to The Astrophysical Journal
References in corpus (16)
- Kepler Mission Design, Realized Photometric Performance, and Early Science
- Theoretical and experimental evidence for a post-perovskite phase of MgSiO3 in Earth's D" layer
- Mass-Radius Relationships for Solid Exoplanets
- A super-Earth transiting a nearby low-mass star
- Inflating Hot Jupiters With Ohmic Dissipation
- The On/Off Nature of Star-Planet Interactions
- Inevitability of Plate Tectonics on Super-Earths
- Geodynamics and Rate of Volcanism on Massive Earth-like Planets
- Chemical abundances of 451 stars from the HARPS GTO planet search program: Thin disc, thick disc, and planets
- Minimum Radii of Super-Earths: Constraints from Giant Impacts
- Coreless Terrestrial Exoplanets
- MOST detects variability on tau Bootis possibly induced by its planetary companion
- Could we identify hot Ocean-Planets with CoRoT, Kepler and Doppler velocimetry?
- CoRoT-7 b: Super-Earth or Super-Io?
- New Worlds on the Horizon: Earth-Sized Planets Close to Other Stars
- Iron melting curve with a tricritical point
Cited by in corpus (23)
- Radial velocity planets de-aliased. A new, short period for Super-Earth 55 Cnc e
- Impact of Space Weather on Climate and Habitability of Terrestrial Type Exoplanets
- Exomoon habitability constrained by illumination and tidal heating
- Tidal heating of Earth-like exoplanets around M stars: Thermal, magnetic, and orbital evolutions
- Whole planet coupling between climate, mantle, and core: Implications for the evolution of rocky planets
- Thermal evolution and lifetime of intrinsic magnetic fields of Super Earths in habitable zones
- Planetary Magnetic Field Control of Ion Escape from Weakly Magnetized Planets
- Decaying shock studies of phase transitions in MgOSiO2 systems: implications for the Super-Earths interiors
- Atmospheres of Hot Super-Earths
- XUV exposed, non-hydrostatic hydrogen-rich upper atmospheres of terrestrial planets II: Hydrogen coronae and ion escape
- The Influence of Thermal Evolution in the Magnetic Protection of Terrestrial Planets
- The role of rotation in the evolution of dynamo generated magnetic fields in Super Earths
- Mantle Convection, Plate Tectonics, and Volcanism on Hot Exo-Earths
- Super-Earths and Earth-like Exoplanets
- Stellar and Planetary Characterization of the Ross 128 Exoplanetary System from APOGEE Spectra
- Theoretical predictions of melting behaviors of hcp iron up to 4000 GPa
- Super-Earths: A New Class of Planetary Bodies
- Ariel Planetary Interiors White Paper
- Magnetic properties of Proxima Centauri b analogues
- High pressure melt locus of iron from atom-in-jellium calculations
- Orbital Evolution of Close-in Super-Earths Driven by Atmospheric Escape
- Internal Structure and Magnetic Moment of Rocky Planets. Application to the first exoplanets discovered by TESS
- A Validated Low-to-Intermediate Mass Planetary Interior Structure Model and New Mass-Radius Relations