Protoplanetary dust porosity and FU Orionis Outbursts: Solving the mystery of Earth's missing volatiles
arXiv:1404.3995 · doi:10.1016/j.icarus.2014.04.015
Abstract
The Earth is known to be depleted in volatile lithophile elements in a fashion that defies easy explanation. We resolve this anomaly with a model that combines the porosity of collisionally grown dust grains in protoplanetary disks with heating from FU Orionis events that dramatically raise protoplanetary disk temperatures. The heating from an FU Orionis event alters the aerodynamical properties of the dust while evaporating the volatiles. This causes the dust to settle, abandoning those volatiles. The success of this model in explaining the elemental composition of the Earth is a strong argument in favor of highly porous collisionally grown dust grains in protoplanetary disks outside our Solar System. Further, it demonstrates how thermal (or condensation based) alterations of dust porosity, and hence aerodynamics, can be a strong factor in planet formation, leading to the onset of rapid gravitational instabilities in the dust disk and the subsequent collapse that forms planetesimals.
14 pages, 6 figures, accepted, Icarus
References in corpus (10)
- Building Terrestrial Planets
- Closed-form expressions for particle relative velocities induced by turbulence
- Accretion in the Rho-Oph pre-main sequence stars
- Identifying the Low Luminosity Population of Embedded Protostars in the c2d Observations of Clouds and Cores
- Dust coagulation in protoplanetary disks: porosity matters
- Turbulent diffusion in protoplanetary discs: the effect of an imposed magnetic field
- Empirical relation between angular momentum transport and thermal-to-magnetic pressure ratio in shearing box simulations
- Growth of Dust as the Initial Step Toward Planet Formation
- Mineral Processing by Short Circuits in Protoplanetary Disks
- Compression Behaviour of Porous Dust Agglomerates
Cited by in corpus (6)
- Evidence of fast pebble growth near condensation fronts in the HL Tau protoplanetary disk
- Can dust coagulation trigger streaming instability?
- Determining the recurrence timescale of long-lasting YSO outbursts
- FU Orionis outbursts, preferential recondensation of water ice, and the formation of giant planets
- The Mid-Infrared Evolution of the FU Orionis Disk
- Semarkona: Lessons for chondrule and chondrite formation