Evolution of the Water Snow Line in Magnetically Accreting Protoplanetary Disks
arXiv:2105.13101 · doi:10.3847/1538-4357/ac06a9
Abstract
The low water content of the terrestrial planets in the solar system suggests that the protoplanets formed within the water snow line. Accurate prediction of the snow line location moving with time provides a clue to constrain the formation process of the planets. In this paper, we investigate the migration of the snow line in protoplanetary disks whose accretion is controlled by laminar magnetic fields, which have been proposed by various nonideal magnetohydrodynamic (MHD) simulations. We propose an empirical model of the disk temperature based on our nonideal MHD simulations, which show that the accretion heating is significantly less efficient than in turbulent disks, and calculate the snow line location over time. We find that the snow line in the magnetically accreting laminar disks moves inside the current Earth's orbit within 1 Myr after star formation, whereas the time for the conventional turbulent disk is much longer than 1 Myr. This result suggests that either the rocky protoplanets formed in such an early phase of the disk evolution, or the protoplanets moved outward to the current orbits after they formed close to the protosun.
17 pages, 12 figures, accepted for publication in ApJ
References in corpus (28)
- Gas- and dust evolution in protoplanetary disks
- Global simulations of protoplanetary disks with ohmic resistivity and ambipolar diffusion
- 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
- Dust size distributions in coagulation/fragmentation equilibrium: Numerical solutions and analytical fits
- Magnetic fields in protoplanetary disks
- Evolution of Protoplanetary Discs with Magnetically Driven Disc Winds
- Bifurcation of planetary building blocks during Solar System formation
- Atmospheric Mass Loss During Planet Formation: The Importance of Planetesimal Impacts
- Hall-effect Controlled Gas Dynamics in Protoplanetary Disks: II. Full 3D Simulations toward the Outer Disk
- Heat and Dust in Active Layers of Protostellar Disks
- Global Simulations of the Inner Regions of Protoplanetary Disks with Comprehensive Disk Microphysics
- Convective Overstability in radially stratified accretion disks under thermal relaxation
- A water budget dichotomy of rocky protoplanets from Al-heating
- Vertical shear instability in accretion disc models with radiation transport
- Evolution of Water Reservoirs on Mars: Constraints from Hydrogen Isotopes in Martian Meteorites
- Convective overstability in accretion disks: 3D linear analysis and nonlinear saturation
- Assembling the Building Blocks of Giant Planets around Intermediate Mass Stars
- Gas and dust dynamics in starlight-heated protoplanetary disks
- Temperature Structure in the Inner Regions of Protoplanetary Disks: Inefficient Accretion Heating Controlled by Nonideal Magnetohydrodynamics
- Global evolution of the magnetic field in a thin disc and its consequences for protoplanetary systems
- Revisiting the pre-main-sequence evolution of stars I. Importance of accretion efficiency and deuterium abundance
- Global Simulations of the Vertical Shear Instability with Non-ideal Magnetohydrodynamical Effects
- The impact of planet wakes on the location and shape of the water iceline in a protoplanetary disk
- Formation of terrestrial planets in disks evolving via disk winds and implications for the origin of the solar system's terrestrial planets
- Magnetorotational instability in protoplanetary discs: The effect of dust grains
- Losing Oceans: The Effects of Composition on the Thermal Component of Impact-driven Atmospheric Loss
- Electric heating and angular momentum transport in laminar models of protoplanetary disks
- Local semi-analytic models of magnetic flux transport in protoplanetary discs
Cited by in corpus (28)
- Steady-state accretion in magnetized protoplanetary disks
- Nucleation and growth of iron pebbles explains the formation of iron-rich planets akin to Mercury
- Millimeter-sized Dust Grains Appear Surviving the Water-sublimating Temperature in the Inner 10 au of the FU Ori Disk
- Planet formation throughout the Milky Way: Planet populations in the context of Galactic chemical evolution
- A global two-layer radiative transfer model for axisymmetric, shadowed protoplanetary disks
- Making the Solar System
- Thermal processing of primordial pebbles in evolving protoplanetary disks
- The Roles of Dust Growth in the Temperature Evolution and Snow Line Migration in Magnetically Accreting Protoplanetary Disks
- Growing the seeds of pebble accretion through planetesimal accretion
- The Molecular Composition of Shadowed Protosolar Disk Midplanes beyond the Water Snowline
- Sublimation of refractory minerals in the gas envelopes of accreting rocky planets
- Solving for the 2D Water Snowline with Hydrodynamic Simulations. Emergence of gas outflow, water cycle and temperature plateau
- On the suppression of giant planet formation around low-mass stars in clustered environments
- Terrestrial planet and asteroid belt formation by Jupiter-Saturn chaotic excitation
- Simple molecules and complex chemistry in a protoplanetary disk: A JWST investigation of the highly inclined disk d216-0939
- Fast formation of large ice pebbles after FU Orionis outbursts
- Massive Protostellar Disks as a Hot Laboratory of Silicate Grain Evolution
- Radiative Nonideal MHD Simulations of Inner Protoplanetary Disks: Temperature Structures, Asymmetric Winds, and Episodic Surface Accretion
- Super-Earth formation in systems with cold giants
- Ionizing Protoplanetary Disks in Pebble Collisions
- Gas Phase Ions in Protoplanetary Disks from Collisions of Solids
- Exploring the conditions for forming planetesimals by the streaming instability and planetary systems by pebble accretion
- Long-term evolution of the temperature structure in magnetized protoplanetary disks and its implication for the dichotomy of planetary composition
- The Impact of Silicate Grain Coagulation on Millimeter Emission from Massive Protostellar Disks
- Thermally driven spontaneous dust accumulation in the inner regions of protoplanetary disks
- Evolution of gas envelopes and outgassed atmospheres of rocky planets formed via pebble accretion
- How leaky? A large parameter study of leaky dust traps to quantify the transport of pebbles and ice in protoplanetary discs
- High-contrast Imaging around a 2 Myr-old CI Tau with a Close-in Gas Giant