A Hot Gap Around Jupiter's Orbit in the Solar Nebula
arXiv:1110.4166 · doi:10.1088/0004-637X/748/2/92
Abstract
The Sun was an order of magnitude more luminous during the first few hundred thousand years of its existence, due in part to the gravitational energy released by material accreting from the Solar nebula. If Jupiter was already near its present mass, the planet's tides opened an optically-thin gap in the nebula. We show using Monte Carlo radiative transfer calculations that sunlight absorbed by the nebula and re-radiated into the gap raised temperatures well above the sublimation threshold for water ice, with potentially drastic consequences for the icy bodies in Jupiter's feeding zone. Bodies up to a meter in size were vaporized within a single orbit if the planet was near its present location during this early epoch. Dust particles lost their ice mantles, and planetesimals were partially to fully devolatilized, depending on their size. Scenarios in which Jupiter formed promptly, such as those involving a gravitational instability of the massive early nebula, must cope with the high temperatures. Enriching Jupiter in the noble gases through delivery trapped in clathrate hydrates will be more difficult, but might be achieved by either forming the planet much further from the star, or capturing planetesimals at later epochs. The hot gap resulting from an early origin for Jupiter also would affect the surface compositions of any primordial Trojan asteroids.
25 pages, 10 figures. ApJ in press. Discussion of Jupiter's volatile enrichment revised in sec. 4.2
References in corpus (5)
- Formation of Jupiter using opacities based on detailed grain physics
- On the Reliability of Stellar Ages and Age Spreads Inferred from Pre-Main Sequence Evolutionary Models
- Ice Lines, Planetesimal Composition and Solid Surface Density in the Solar Nebula
- Heating and Cooling Protostellar Disks
- Dust accretion onto high-mass planets
Cited by in corpus (24)
- Submillimeter emission associated with candidate protoplanets
- On the water delivery to terrestrial embryos by ice pebble accretion
- Three-Dimensional Radiation Transfer in Young Stellar Objects
- Global hydromagnetic simulations of a planet embedded in a dead zone: gap opening, gas accretion and formation of a protoplanetary jet
- CSI 2264: Characterizing Young Stars in NGC 2264 with Short-Duration, Periodic Flux Dips in their Light Curves
- Temperature Structure in the Inner Regions of Protoplanetary Disks: Inefficient Accretion Heating Controlled by Nonideal Magnetohydrodynamics
- Gaps in Protoplanetary Disks as Signatures of Planets: I. Methodology and Validation
- Planet or Brown Dwarf? Inferring the Companion Mass in HD 100546 from the Wall Shape using Mid-Infrared Interferometry
- Gaps in Protoplanetary Disks as Signatures of Planets: II. Inclined Disks
- The Disc Miner II: Revealing Gas substructures and Kinematic signatures from Planet-disc interaction through line profile analysis
- Shedding Light on the Eccentricity Valley: Gap Heating and Eccentricity Excitation of Giant Planets in Protoplanetary Disks
- A global two-layer radiative transfer model for axisymmetric, shadowed protoplanetary disks
- The Molecular Composition of Shadowed Protosolar Disk Midplanes beyond the Water Snowline
- Turbulent Thermal Diffusion: A Way to Concentrate Dust in Protoplanetary Discs
- The detection of dust gap-ring structure in the outer region of the CR Cha protoplanetary disk
- Circumplanetary disk ices. I. Ice formation vs. viscous evolution and grain drift
- Linear Corotation Torques in Non-Barotropic Disks
- Photoevaporation of the Jovian circumplanetary disk I. Explaining the orbit of Callisto and the lack of outer regular satellites
- Effective dust growth in laminar circumplanetary discs with magnetic wind-driven accretion
- Investigating the possibility of reversing giant planet migration via gap edge illumination
- Observing Circumplanetary Disks with METIS
- Potential vorticity dynamics in the framework of disk shallow-water theory: II. Mixed Barotropic-Baroclinic Instability
- Dust Coagulation in the Vicinity of a Gap-Opening Jupiter-Mass Planet
- Dust photophoretic transport around a T Tauri star: Implications for comets composition