Magnetospheric Gap and Accumulation of Giant Planets Close to the Star
arXiv:astro-ph/0606177 · doi:10.1086/505967
Abstract
The bunching of giant planets at a distance of several stellar radii may be explained by the disruption of the inner part of the disk by the magnetosphere of the star during the T Tauri stage of evolution. The rotating magnetic field of the star gives rise to a low density magnetospheric gap where stellar migration is strongly suppressed. We performed full 3D magnetohydrodynamic simulations of the disk-magnetosphere interaction and examined conditions for which the magnetospheric gap is "empty", by changing the misalignment angle between magnetic and rotational axes of the star, Theta, and by lowering the adiabatic index gamma, which mocks up the effect of heat conductivity and cooling. Our simulations show that for a wide range of plausible conditions the gap is essentially empty. However, in the case of large misalignment angles Theta, part of the funnel stream is located in the equatorial plane and the gap is not empty. Furthermore, if the adiabatic index is small (gamma=1.1) and the rotational and magnetic axes are almost aligned, then matter penetrates through the magnetosphere due to 3D instabilities forming high-density equatorial funnels. For these two limits there is appreciable matter density in the equatorial plane of the disk so that a planet may migrate into the star.
6 pages, 6 figures, Accepted to the ApJ Letters. See version of the paper with higher resolution plots at http://astrosun2.astro.cornell.edu/us-rus/planets.htm
References in corpus (1)
Cited by in corpus (22)
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- Accretion to Magnetized Stars through the Rayleigh-Taylor Instability: Global Three-Dimensional Simulations
- Magnetic cycles of the planet-hosting star tauBootis
- Magnetically Arrested Disks and Origin of Poynting Jets: Numerical Study
- SPIRou: nIR velocimetry & spectropolarimetry at the CFHT
- The New Generation Planetary Population Synthesis (NGPPS). II. Planetary population of solar-like stars and overview of statistical results
- Three-dimensional Simulations of Accretion to Stars with Complex Magnetic Fields
- The non-dipolar magnetic fields of accreting T Tauri stars
- The hot Jupiter of the magnetically-active weak-line T Tauri star V830 Tau
- Pushing planets into an inner cavity by a resonant chain
- Magnetic topologies of young suns: The weak-line T Tauri stars TWA 6 and TWA 8A
- The "Breaking The Chains" migration model for super-Earths formation: the effect of collisional fragmentation
- The origin of the eccentricity of the hot Jupiter in CI Tau
- A Transient Transit Signature Associated with the Young Star RIK-210
- Magnetic activity and radial velocity filtering of young Suns: The weak-line T Tauri stars Par 1379 and Par 2244
- Eccentricity Growth of Massive Planets inside Cavities of Protoplanetary Discs
- UVMag: stellar formation, evolution, structure and environment with space UV and visible spectropolarimetry
- Assessing the spin-orbit obliquity of low-mass planets in the breaking the chain formation model: A story of misalignment
- Forming rocky exoplanets around K-dwarf stars
- Origin of compact exoplanetary systems during disk infall
- Forming Earth-like and Low-Mass Rocky Exoplanets Through Pebble and Planetesimal Accretion
- Halting Migration in Magnetospherically Sculpted Protoplanetary Disks