Radio Pulsar Beam Geometry at Lower Frequencies: Bright Sources Outside the Arecibo Sky
arXiv:2206.07739 · doi:10.1093/mnras/stac1302
Abstract
We present pulsar emission beam analyses and models in an effort to examine pulsar geometry and physics at the lowest frequencies scattering permits. We consider two populations of well-studied pulsars that lie outside the Arecibo sky, the first drawing on the Jodrell Bank Gould & Lyne survey down to -35° declination and a second using Parkes surveys in the far south. These assemble the full sky population of 487 pulsars known before the late 1990s which conveniently all have "B" names. We make full use of the core/double-cone emission beam model to assess its efficacy at lower frequencies, and we outline how different pair plasma sources probably underlie its validity. The analysis shows that with a very few exceptions pulsar radio emission beams can be modeled quantitatively with two concentric conal beams and a core beam of regular angular dimensions at 1 GHz. Further, the beamforms at lower frequencies change progressively in size but not in configuration. Pulsar emission-beam properties divide strongly depending on whether the plasma excitation is central within the polar fluxtube producing a core beam or peripheral along the edges generating conal beams, and this seems largely determined by whether their spindown energy is greater or less than about 10 ergs/s. Core emission dominated pulsars tend concentrate closely along the Galactic plane and in the direction of the Galactic center; whereas conal pulsars are somewhat more uniformly distributed both in Galactic longitude and latitude. Core dominated pulsars also tend to be more distant and particularly so in the inner Galaxy region.
Main paper plus two appendices, in all 74 pages, 24 figures and 8 tables, not in OUP production
References in corpus (11)
- Profile and polarization characteristics of energetic pulsars
- Polarimetry of 600 pulsars from observations at 1.4 GHz with the Parkes radio telescope
- Pulsar braking and the P-Pdot diagram
- Meterwavelength Single-pulse Polarimetric Emission Survey II: The phenomenon of Drifting Subpulses
- Scattering analysis of LOFAR pulsar observations
- Evidence for alignment of the rotation and velocity vectors in pulsars. II. Further data and emission heights
- Multi-frequency integrated profiles of pulsars
- Toward an Empirical Theory of Pulsar Emission. X. On the Precursor and Postcursor Emission
- No Pulsar Left Behind. I. Timing, Pulse-sequence Polarimetry, and Emission Morphology for 12 pulsars
- Toward an Empirical Theory of Pulsar Emission XII: Exploring the Physical Conditions in Millisecond Pulsar Emission Regions
- The second decametre pulsar census at UTR-2 radio telescope
Cited by in corpus (7)
- The Thousand-Pulsar-Array programme on MeerKAT -- VIII. The subpulse modulation of 1198 pulsars
- Pulsar Emission Beam Geometry of Radio Broadband Arecibo Sources
- Polarization Measurements of Arecibo-Sky Pulsars: Faraday Rotations and Emission-Beam Analyses
- Radio Pulsar Emission-Beam Geometry at Low Frequency: LOFAR High Band Survey Sources Studied using Arecibo at 1.4 GHz and 327 MHz
- Arecibo Pulsar Beam Geometry at Lower Frequencies Radio Pulsar Beam Geometry Down to the 100-MHz Band: 76 Additional Sources Within the Arecibo Sky
- Topology of Pulsar Profiles (ToPP). I. Graph theory method and classification of the EPN
- Individual pulse emission from the diffuse drifter PSR J14016357 using the ultrawideband receiver on the Parkes radio telescope