Equilibrium conditions of spinning test particles in Kerr-de Sitter spacetimes
arXiv:gr-qc/0611153 · doi:10.1088/0264-9381/23/11/016
Abstract
Equilibrium conditions and spin dynamics of spinning test particles are discussed in the stationary and axially symmetric Kerr-de Sitter black-hole or naked-singularity spacetimes. The general equilibrium conditions are established, but due to their great complexity, the detailed discussion of the equilibrium conditions and spin dynamics is presented only in the simple and most relevant cases of equilibrium positions in the equatorial plane and on the symmetry axis of the spacetimes. It is shown that due to the combined effect of the rotation of the source and the cosmic repulsion the equilibrium is spin dependent in contrast to the spherically symmetric spacetimes. In the equatorial plane, it is possible at the so-called static radius, where the gravitational attraction is balanced by the cosmic repulsion, for the spinless particles as well as for spinning particles with arbitrarily large azimuthal-oriented spin or at any radius outside the ergosphere with a specifically given spin orthogonal to the equatorial plane. On the symmetry axis, the equilibrium is possible at any radius in the stationary region and is given by an appropriately tuned spin directed along the axis. At the static radii on the axis the spin of particles in equilibrium must vanish.
References in corpus (1)
Cited by in corpus (10)
- Spinning test particle in four-dimensional Einstein-Gauss-Bonnet Black Hole
- Spinning test particles in the spacetime
- Current-carrying string loops in black-hole spacetimes with a repulsive cosmological constant
- Motion of spinning particles in non asymptotically flat spacetimes
- Optical reference geometry and inertial forces in Kerr-de Sitter spacetimes
- Motion of spinning particles around a polymer black hole in loop quantum gravity
- The Raychaudhuri equation for spinning test particles
- 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
- Report on workshop A1: Exact solutions and their interpretation