Frame-dragging effects in obliquely rotating magnetars
arXiv:1906.00601 · doi:10.1007/s12036-021-09735-1
Abstract
Magnetars are highly magnetized neutron stars. For a slowly rotating magnetar, the strong magnetic field deforms the star, making it axisymmetric with respect to the magnetic axis (the body symmetry axis). In magnetars, the rotation axis is tilted to the magnetic axis, and we have an oblique rotator. General relativistic treatment of the obliquely rotating magnetar gives rise to frame-dragging velocities both in the azimuthal and polar direction. Solving the Einstein equation up to first-order perturbation in rotation and second-order perturbation in the magnetic field, we calculate the geodesic of a particle near the star's surface. The polar frame-dragging velocity makes the particle orbit non-planar, and the particle moves both along the azimuthal and polar direction for a fixed radial distance. The extent of particle deviation from planar orbit depends on the magnetic field strength and the misalignment angle. We find that the continuous gravitational wave emitted from such obliquely rotating axisymmetric star is non zero, and for small misalignment angle, the gravitational wave amplitude depends more on the azimuthal frame-dragging velocity. In contrast, for a large misalignment angle, the polar frame-dragging velocity dominates. The energy loss from such a misaligned rotator depends more significantly on the polar frame-dragging velocity and therefore, can significantly affect the magnetosphere around a magnetar.
17 pages, 7 figures
References in corpus (7)
- GW170817: Observation of Gravitational Waves from a Binary Neutron Star Inspiral
- Particle acceleration in axisymmetric pulsar current sheets
- Consistent neutron star models with magnetic field dependent equations of state
- Possible Evidence for Free Precession of a Strongly Magnetized Neutron Star in the Magnetar 4U 0142+61
- Electrodynamics of pulsar magnetospheres
- The internal composition of proto-neutron stars under strong magnetic fields
- Non-rigid precession of magnetic stars
Cited by in corpus (5)
- Multimessenger signal from phase transition of neutron star to quark star
- Deciphering Accretion-Driven Starquakes in Recycled Millisecond Pulsars using Gravitational Waves
- Semi Universal relation to understand matter properties at neutron star interiors
- General relativistic calculation of magnetic field and Power loss for a misaligned pulsar
- Effects of Nontrivial Topology on Neutron Star Rotation and its Potential Observational Implications