Influence of Rotation on Pulsar Radiation Characteristics
arXiv:astro-ph/0111039 · doi:10.1086/338078
Abstract
We present a relativistic model for pulsar radio emission by including the effect of rotation on coherent curvature radiation by bunches. We find that rotation broadens the width of leading component compared to the width of trailing component. We estimate the component widths in the average pulse profiles of about 24 pulsars, and find that 19 of them have a broader leading component. We explain this difference in the component widths by using the nested cone emission geometry. We estimate the effect of pulsar spin on the Stokes parameters, and find that the inclination between the rotation and magnetic axes can introduce an asymmetry in the circular polarization of the conal components. We analyze the single pulse polarization data of PSR B0329+54 at 606 MHz, and find that in its conal components, one sense of circular polarization dominates in the leading component while the other sense dominates in the trailing component. Our simulation shows that changing the sign of the impact parameter changes the sense of circular polarization as well as the swing of polarization angle.
20 pages, 4 Postscript figures, uses aastex.cls. Accepted for Publication in ApJ 2001
References in corpus (1)
Cited by in corpus (9)
- Toward An Empirical Theory of Pulsar Emission. VII. On the Spectral Behavior of Conal Beam Radii and Emission Heights
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- The origin of the frequency-dependent behaviour of pulsar radio profiles
- Relativistic model on pulsar radio emission and polarization
- Dynamics of Charged Particles in the Radio Emission Region of Pulsar Magnetosphere
- Radio Emission by Particles due to Pulsar Spin
- Role of rotation and polar cap current on pulsar radio emission and polarization
- Understanding the effects of geometry and rotation on pulsar intensity profiles
- Evidence for scattering of curvature radiation in radio pulsar profiles