The role of cosmic rays on magnetic field diffusion and the formation of protostellar discs
arXiv:1408.5901 · doi:10.1051/0004-6361/201424035
Abstract
The formation of protostellar discs is severely hampered by magnetic braking, as long as magnetic fields remain frozen in the gas. The latter condition depends on the levels of ionisation that characterise the innermost regions of a collapsing cloud. The chemistry of dense cloud cores and, in particular, the ionisation fraction is largely controlled by cosmic rays. The aim of this paper is to evaluate whether the attenuation of the flux of cosmic rays expected in the regions around a forming protostar is sufficient to decouple the field from the gas, thereby influencing the formation of centrifugally supported disc. We adopted the method developed in a former study to compute the attenuation of the cosmic-ray flux as a function of the column density and the field strength in clouds threaded by poloidal and toroidal magnetic fields. We applied this formalism to models of low- and high-mass star formation extracted from numerical simulations of gravitational collapse that include rotation and turbulence. For each model we determine the size of the magnetic decoupling zone, where collapse or rotation motion becomes unaffected by the local magnetic field. In general, we find that decoupling only occurs when the attenuation of cosmic rays is taken into account with respect to a calculation in which the cosmic-ray ionisation rate is kept constant. The extent of the decoupling zone also depends on the dust grain size distribution and is larger if large grains (of radius cm) are formed by compression and coagulation during cloud collapse. We conclude that a realistic treatment of cosmic-ray propagation and attenuation during cloud collapse may lead to a value of the resistivity of the gas in the innermost few hundred AU around a forming protostar that is higher than generally assumed.
10 pages, 9 figures, accepted by A&A
References in corpus (8)
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Magnetic processes in a collapsing dense core. I Accretion and Ejection
- Magnetic Braking and Protostellar Disk Formation: The Ideal MHD Limit
- Magnetic fields in protoplanetary disks
- Gravitational collapse of magnetized clouds. I. Ideal MHD accretion flow
- Gravitational collapse of magnetized clouds II. The role of Ohmic dissipation
- Three-fluid plasmas in star formation II. Momentum transfer rate coefficients
- Three-fluid plasmas in star formation I. Magneto-hydrodynamic equations
Cited by in corpus (16)
- Radiation Magnetohydrodynamic Simulations of Protostellar Collapse: Non-Ideal Magnetohydrodynamic Effects and Early Formation of Circumstellar Disks
- Signs of Early-Stage Disk Growth Revealed with ALMA
- The role of magnetic fields in the formation of protostellar discs
- Observations of Infalling and Rotational Motions on a 1,000-AU Scale around 17 Class 0 and 0/I Protostars: Hints of Disk Growth and Magnetic Braking?
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- The impact of non-ideal magnetohydrodynamic processes on discs, outflows, counter-rotation and magnetic walls during the early stages of star formation
- Magnetically regulated collapse in the B335 protostar? II. Observational constraints on gas ionization and magnetic field coupling
- The VLA Nascent Disk And Multiplicity Survey of Perseus Protostars (VANDAM). III. Extended Radio Emission from Protostars in Perseus
- Constraining the cosmic-ray ionization rate and their spectrum with NIR spectroscopy of dense clouds -- A test-bed for JWST
- JCMT POL-2 and ALMA polarimetric observations of 6000-100 au scales in the protostar B335: linking magnetic field and gas kinematics in observations and MHD simulations
- Increasing mass-to-flux ratio from the dense core to the protostellar envelope around the Class 0 protostar HH 211
- The Effects of Cosmic Rays on the Chemistry of Dense Cores
- A new analytic approach to infer the cosmic-ray ionization rate in hot molecular cores from HCO, NH, and CO observations
- No impact of core-scale magnetic field, turbulence, or velocity gradient on sizes of protostellar disks in Orion A
- Modelling thermochemical processes in protoplanetary disks I: numerical methods
- A semiempirical approach to low-energy cosmic ray propagation in the diffuse interstellar medium