On the Location of the Snow Line in a Protoplanetary Disk
arXiv:astro-ph/0602217 · doi:10.1086/500287
Abstract
In a protoplanetary disk, the inner edge of the region where the temperature falls below the condensation temperature of water is referred to as the 'snow line'. Outside the snow line, water ice increases the surface density of solids by a factor of 4. The mass of the fastest growing planetesimal (the 'isolation mass') scales as the surface density to the 3/2 power. It is thought that ice-enhanced surface densities are required to make the cores of the gas giants (Jupiter and Saturn) before the disk gas dissipates. Observations of the Solar System's asteroid belt suggest that the snow line occurred near 2.7 AU. In this paper we revisit the theoretical determination of the snow line. In a minimum-mass disk characterized by conventional opacities and a mass accretion rate of 10^-8 solar masses per year, the snow line lies at 1.6-1.8 AU, just past the orbit of Mars. The minimum-mass disk, with a mass of 0.02 solar, has a life time of 2 million years with the assumed accretion rate. Moving the snow line past 2.7 AU requires that we increase the disk opacity, accretion rate, and/or disk mass by factors ranging up to an order of magnitude above our assumed baseline values.
Accepted for publication in ApJ, 9 pages, 4 figures
Cited by in corpus (16)
- Coagulation, fragmentation and radial motion of solid particles in protoplanetary disks
- Planet formation around stars of various masses: The snow line and the frequency of giant planets
- Toward a Deterministic Model of Planetary Formation V. Accumulation Near the Ice Line
- Transience of hot dust around sun-like stars
- A Low-Mass Planet with a Possible Sub-Stellar-Mass Host in Microlensing Event MOA-2007-BLG-192
- Analytical protostellar disk models 1: the effect of internal dissipation and surface irradiation on the structure of disks and the location of the snow line around Sun-like stars
- H2O and OH gas in the terrestrial planet-forming zones of protoplanetary disks
- The chemical history of molecules in circumstellar disks. I. Ices
- Planetesimal formation around the snow line in MRI-driven turbulent protoplanetary disks
- A Search for Multi-Planet Systems Using the Hobby-Eberly Telescope
- Grain Sedimentation in a Giant Gaseous Protoplanet
- Spectrally Dispersed K-Band Interferometric Observations of Herbig Ae/Be Sources: Inner Disk Temperature Profiles
- Microlensing Detections of Moons of Exoplanets
- Molecular Hydrogen emission from disks in the eta Chamaeleontis cluster
- Rotational Line Emission from Water in Protoplanetary Disks
- The search for exomoons and the characterization of exoplanet atmospheres