The origin of the frequency-dependent behaviour of pulsar radio profiles
arXiv:1411.0866 · doi:10.1093/mnras/stu2262
Abstract
We present further development of a pulsar emission model based on multiple streams diverging away from the magnetic dipole axis, and forming azimuthally-structured fan-shaped beams. It is shown that this geometry, successfully tested on profiles with bifurcated features, naturally solves several classical pulsar problems and avoids some difficulties of the traditional nested cone/core model. This is best visible for profiles with several components, such as those of class T, Q and M, because they most clearly exhibit a range of effects previously interpreted within the conal model. In particular, with no reference to the flaring boundary of the polar magnetic flux tube, the stream model explains the apparent radius-to-frequency mapping (RFM), including its reduced strength for the inner pair of components. The lag of the central component (apparent `core') with respect to the centroids of the flanking (`conal') components can also be naturally explained with no reference to emission rings located at disparate altitudes. The stream model also reveals why the millisecond pulsars, despite their more strongly flaring magnetic field lines, do not exhibit as strong RFM as the normal pulsars. The model is then successful in reproducing properties of so disparate objects as the M-class and millisecond pulsars, including some peculiarities of the latter. With no hesitation we, therefore, advance the view that pulsars have fan beams generated by outflowing streams, whereas the nested cone/core beams may well not exist at all.
20 pages, 13 figures, accepted by MNRAS
References in corpus (7)
- Dispersion Measure Variations and their Effect on Precision Pulsar Timing
- The subpulse modulation properties of pulsars at 92 cm and the frequency dependence of subpulse modulation
- Population synthesis of radio and gamma-ray millisecond pulsars from the Galactic disk
- An empirical model for the beams of radio pulsars
- A Fan Beam Model for Radio Pulsars. I. Observational Evidence
- A Study of Giant Pulses from PSR J1824-2452A
- Inter-relationship between the Two Emission Cones of B1237+25
Cited by in corpus (12)
- On the beam properties of radio pulsars with interpulse emission
- The Thousand-Pulsar-Array programme on MeerKAT XI: Application of the rotating vector model
- The Thousand-Pulsar-Array programme on MeerKAT I: Science objectives and first results
- The Galactic population and properties of young, highly-energetic pulsars
- The frequency-dependent behaviour of subpulse drifting: I. Carousel geometry and emission heights of PSR B0031-07
- A broadband radio study of PSR J0250+5854: the slowest-spinning radio pulsar known
- Pulsar polarimetry with the Parkes Ultra-Wideband receiver
- The Thousand-Pulsar-Array programme on MeerKAT VII: Polarisation properties of pulsars in the Magellanic Clouds
- A model for distortions of polarisation-angle curves in radio pulsars
- Role of Fan Beam Model in Population Synthesis of Isolated Radio Pulsars
- Evidence for scattering of curvature radiation in radio pulsar profiles
- Frequency evolution of pulsar emission: Further evidence for fan beam model