Kinetic description of quasi-stationary axisymmetric collisionless accretion disk plasmas with arbitrary magnetic field configurations
arXiv:1102.0179 · doi:10.1063/1.3592674
Abstract
A kinetic treatment is developed for collisionless magnetized plasmas occurring in high-temperature, low-density astrophysical accretion disks, such as are thought to be present in some radiatively-inefficient accretion flows onto black holes. Quasi-stationary configurations are investigated, within the framework of a Vlasov-Maxwell description. The plasma is taken to be axisymmetric and subject to the action of slowly time-varying gravitational and electromagnetic fields. The magnetic field is assumed to be characterized by a family of locally nested but open magnetic surfaces. The slow collisionless dynamics of these plasmas is investigated, yielding a reduced gyrokinetic Vlasov equation for the kinetic distribution function. For doing this, an asymptotic quasi-stationary solution is first determined, represented by a generalized bi-Maxwellian distribution expressed in terms of the relevant adiabatic invariants. The existence of the solution is shown to depend on having suitable kinetic constraints and conditions leading to particle trapping phenomena. With this solution one can treat temperature anisotropy, toroidal and poloidal flow velocities and finite Larmor-radius effects. An asymptotic expansion for the distribution function permits analytic evaluation of all of the relevant fluid fields. Basic theoretical features of the solution and their astrophysical implications are discussed. As an application, the possibility of describing the dynamics of slowly time-varying accretion flows and the self-generation of magnetic field by means of a \textquotedblleft kinetic dynamo effect\textquotedblright\ is discussed. Both effects are shown to be related to intrinsically-kinetic physical mechanisms.
Accepted version for Physics of Plasmas
References in corpus (5)
- Kinetic axi-symmetric gravitational equilibria in collisionless accretion disc plasmas
- Global transient dynamics of three-dimensional hydrodynamical disturbances in a thin viscous accretion disk
- An investigation of magnetic field distortions in accretion discs around neutron stars. I. Analysis of the poloidal field component
- Generalized Grad-Shafranov equation for gravitational Hall-MHD equilibria
- Generalized covariant gyrokinetic dynamics of magnetoplasmas
Cited by in corpus (13)
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- Kinetic description of rotating Tokamak plasmas with anisotropic temperatures in the collisionless regime
- Theory of spatially non-symmetric kinetic equilibria for collisionless plasmas
- Absolute stability of axisymmetric perturbations in strongly-magnetized collisionless axisymmetric accretion disk plasmas
- Collisionless kinetic regimes for quasi-stationary axisymmetric accretion disc plasmas
- Kinetic equilibria of relativistic collisionless plasmas in the presence of non-stationary electromagnetic fields
- Covariant formulation of spatially non-symmetric kinetic equilibria in magnetized astrophysical plasmas
- Carter-constant induced mechanism for generation of anisotropic kinetic equilibria in collisionless N-body systems
- Magnification effect of Kerr metric by configurations of collisionless particles in non-isotropic kinetic equilibria
- Polytropic representation of the kinetic pressure tensor of non-ideal magnetized fluids in equilibrium toroidal structures