Strong field effects on pulsar arrival times: general orientations
arXiv:0909.2709 · doi:10.1088/0004-637X/705/2/1252
Abstract
A pulsar beam passing close to a black hole can provide a probe of very strong gravitational fields even if the pulsar itself is not in a strong field region. In the case that the spin of the hole can be ignored, we have previously shown that all strong field effects on the beam can be understood in terms of two "universal" functions, and of the angle of beam emission ; these functions are universal in that they depend only on a single parameter, the pulsar/black hole distance from which the beam is emitted. Here we apply this formalism to general pulsar-hole-observer geometries, with arbitrary alignment of the pulsar spin axis and arbitrary pulsar beam direction and angular width. We show that the analysis of the observational problem has two distinct elements: (i) the computation of the location and trajectory of an observer-dependent "keyhole" direction of emission in which a signal can be received by the observer; (ii) the determination of an annulus that represents the set of directions containing beam energy. Examples of each are given along with an example of a specific observational scenario.
Submitted to the Astrophysical Journal
References in corpus (5)
- Stellar remnants in galactic nuclei: mass segregation
- Probing the Spacetime Around Sgr A* with Radio Pulsars
- A Catalog of Diffuse X-ray-Emitting Features within 20 pc of Sgr A*: Twenty Pulsar Wind Nebulae?
- Pulse Arrival-Times from Binary Pulsars with Rotating Black Hole Companions
- Strong field effects on pulsar arrival times: circular orbits and equatorial beams
Cited by in corpus (14)
- Prospects for Probing the Spacetime of Sgr A* with Pulsars
- Towards relativistic orbit fitting of Galactic center stars and pulsars
- Spatial dispersion of light rays propagating through a plasma in Kerr spacetime
- Pulsar timing in extreme mass ratio binaries: a general relativistic approach
- Fast Spinning Pulsars as Probes of Massive Black Holes' Gravity
- An asymptotically consistent approximant for the equatorial bending angle of light due to Kerr black holes
- The propagation delay in the timing of a pulsar orbiting a supermassive black hole
- Relativistic propagation and frame dragging time delay in the timing of a pulsar orbiting the supermassive black hole SgrA*
- Detection of pulsar beams deflected by the black hole in Sgr A*: effects of black hole spin
- Gravitational Burst Radiation from Pulsars in the Galactic centre and stellar clusters
- Observability of pulsar beam bending by the Sgr~A* black hole
- Apparently ultra-long period radio sources from self-lensed pulsar-black hole binaries
- On the Deepest Search for Galactic Center Pulsars and an Examination of an Intriguing Millisecond Pulsar Candidate
- Measuring black hole spin through gravitational lensing of pulsars