Shear-Driven Field-Line Opening and the Loss of a Force-Free Magnetostatic Equilibrium
arXiv:astro-ph/0206061 · doi:10.1086/341119
Abstract
This paper discusses a quasi-static evolution of a force-free magnetic field under slow sheared footpoint motions on the plasma's boundary, an important problem with applications to the solar and accretion disk coronae. The main qualitative features of the evolution (such as field-line expansion and opening) are considered and a comparison is made between two different geometrical settings: the Cartesian case with translational symmetry along a straight line, and the axisymmetric case with axial symmetry around the rotation axis. The main question addressed in the paper is whether a continuous sequence of force-free equilibria describes the evolution at arbitrarily large values of the footpoint displacement or the sequence ends abruptly and the system exhibits a loss of equilibrium at a finite footpoint displacement. After a formal description of the problem, a review/discussion of the extensive previous work on the subject is given. After that, a series of simple scaling-type arguments, explaining the key essential reason for the main qualitative difference between the two geometry types, is presented. It is found that, in the Cartesian case, force-free equilibria exist at arbitrarily large values of shear and the field approaches the open state only at infinite shear, whereas in the axisymmetric case the field opens up already at a finite shear.
AASTEX, 24 pages, 3 figures. Accepted to Astrophysical Journal
References in corpus (1)
Cited by in corpus (24)
- Magnetars
- Untwisting magnetospheres of neutron stars
- A Magnetohydrodynamic Model for the Formation of Episodic Jets
- Dynamics of Strongly Twisted Relativistic Magnetospheres
- Plasma Physics of Extreme Astrophysical Environments
- Stellar Explosions by Magnetic Towers
- Force-Free Magnetosphere of an Accretion Disk -- Black Hole System. II. Kerr Geometry
- Statistical Description of a Magnetized Corona above a Turbulent Accretion Disk
- Triggering magnetar outbursts in 3D force-free simulations
- Twisting, reconnecting magnetospheres and magnetar spindown
- Magnetic Interaction between Stars and Accretion Disks
- Particle-in-cell simulations of the twisted magnetospheres of magnetars
- Force-Free Magnetosphere of an Accretion Disk -- Black Hole System. I. Schwarzschild Geometry
- Spinning black holes magnetically connected to a Keplerian disk -- Magnetosphere, reconnection sheet, particle acceleration and coronal heating
- Relativistic Magnetic Reconnection in Astrophysical Plasmas: A Powerful Mechanism of Nonthermal Emission
- Long-term evolution of the force-free twisted magnetosphere of a magnetar
- Twist-induced Magnetosphere Reconfiguration for Intermittent Pulsars
- Strongly magnetized pulsars: explosive events and evolution
- Activated Magnetospheres of Magnetars
- Self-Similar Magnetic Arcades
- Magnetar outburst and spin-down glitch
- Inertial oscillation modes of an inclined dipolar magnetosphere as a source of band-limited noise in X-ray pulsars
- Relativistically expanding cylindrical electromagnetic fields
- Relativistic Magnetohydrodynamic Simulations of Giant Magnetar Bursts