Protostar Formation in Magnetic Molecular Clouds beyond Ion Detachment: I. Formulation of the Problem and Method of Solution
arXiv:astro-ph/0702036 · doi:10.1086/512760
Abstract
We formulate the problem of the formation of magnetically supercritical cores in magnetically subcritical parent molecular clouds, and the subsequent collapse of the cores to high densities, past the detachment of ions from magnetic field lines and into the opaque regime. We employ the six-fluid MHD equations, accounting for the effects of grains (negative, positive and neutral) including their inelastic collisions with other species. We do not assume that the magnetic flux is frozen in any of the charged species. We derive a generalized Ohm's law that explicitly distinguishes between flux advection (and the associated process of ambipolar diffusion) and Ohmic dissipation, in order to assess the contribution of each mechanism to the increase of the mass-to-flux ratio of the central parts of a collapsing core and possibly to the resolution of the magnetic flux problem of star formation. We show how our formulation is related to and can be transformed into the traditional, directional formulation of the generalized Ohm's law, and we derive formulae for the perpendicular, parallel and Hall conductivities entering the latter, which include, for the first time, the effect of inelastic collisions between grains. In addition, we present a general (valid in any geometry) solution for the velocities of charged species as functions of the velocity of the neutrals and of the effective flux velocity (which can in turn be calculated from the dynamics of the system and Faraday's law). The last two sets of formulae can be adapted for use in any general non-ideal MHD code to study phenomena beyond star formation in magnetic clouds. The results, including a detailed parameter study, are presented in two accompanying papers.
17 pages, emulateapj; accepted for publication in the Astrophysical Journal
References in corpus (3)
- Observational Constraints on the Ages of Molecular Clouds and the Star-Formation Timescale: Ambipolar-Diffusion--Controlled or Turbulence-Induced Star Formation?
- Protostar Formation in Magnetic Molecular Clouds beyond Ion Detachment: II. Typical Axisymmetric Solution
- Protostar Formation in Magnetic Molecular Clouds beyond Ion Detachment: III. A Parameter Study
Cited by in corpus (20)
- Theory of Star Formation
- Recurrent Planet Formation and Intermittent Protostellar Outflows Induced by Episodic Mass Accretion
- Complex Structure in Class 0 Protostellar Envelopes
- The role of magnetic fields in the formation of protostellar discs
- Disk Formation Enabled by Enhanced Resistivity
- The nonisothermal stage of magnetic star formation. II. Results
- Protostar Formation in Magnetic Molecular Clouds beyond Ion Detachment: II. Typical Axisymmetric Solution
- The Nonisothermal Stage of Magnetic Star Formation. I. Formulation of the Problem and Method of Solution
- An Explicit Scheme for Incorporating Ambipolar Diffusion in a Magnetohydrodynamics Code
- Constraining the Earliest Circumstellar Disks and their Envelopes
- The impact of non-ideal magnetohydrodynamic processes on discs, outflows, counter-rotation and magnetic walls during the early stages of star formation
- The effect of extreme ionisation rates during the initial collapse of a molecular cloud core
- On the origin of magnetic fields in stars II: The effect of numerical resolution
- Origin of the dense core mass function in contracting filaments
- Non-ideal MHD simulations of subcritical prestellar cores with non-equilibrium chemistry
- Protostar Formation in Magnetic Molecular Clouds beyond Ion Detachment: III. A Parameter Study
- Thermal instability in ionized plasma
- Can we observe the ion-neutral drift velocity in prestellar cores?
- Star Formation at the Galactic Center
- Dusty Magnetohydrodynamics in Star Forming Regions