Scattering and Diffraction in Magnetospheres of Fast Pulsars
arXiv:astro-ph/9908220 · doi:10.1086/309451
Abstract
We apply a theory of wave propagation through a turbulent medium to the scattering of radio waves in pulsar magnetospheres. We find that under conditions of strong density modulation the effects of magnetospheric scintillations in diffractive and refractive regimes may be observable. The most distinctive feature of the magnetospheric scintillations is their independence on frequency. Results based on diffractive scattering due to small scale inhomogeneities give a scattering angle that may be as large as 0.1 radians, and a typical decorrelation time of seconds. Refractive scattering due to large scale inhomogeneities is also possible, with a typical angle of radians and a correlation time of the order of seconds. Temporal variation in the plasma density may also result in a delay time of the order of seconds. The different scaling of the above quantities with frequency may allow one to distinguish the effects of propagation through a pulsar magnetosphere from the interstellar medium. In particular, we expect that the magnetospheric scintillations are relatively more important for nearby pulsars when observed at high frequencies.
19 pages, 1 Figure
References in corpus (1)
Cited by in corpus (7)
- Pulsar microstructure and its quasi-periodicities with the S2 VLBI system at a resolution of 62.5 nanoseconds
- Excess Optical Enhancement Observed with ARCONS for Early Crab Giant Pulses
- Radio Pulsars
- Constraining the Vela Pulsar's Radio Emission Region Using Nyquist-Limited Scintillation Statistics
- Size of the Vela Pulsar's Emission Region at 18 cm Wavelength
- The Statistics of Radio Astronomical Polarimetry: Bright Sources and High Time Resolution
- Ultra-High Resolution Intensity Statistics of a Scintillating Source