Reconnection in pulsar winds
arXiv:astro-ph/0109332 · doi:10.1071/AS01046
Abstract
The spin-down power of a pulsar is thought to be carried away in an MHD wind in which, at least close to the star, the energy transport is dominated by Poynting flux. The pulsar drives a low-frequency wave in this wind, consisting of stripes of toroidal magnetic field of alternating polarity, propagating in a region around the equatorial plane. The current implied by this configuration falls off more slowly with radius than the number of charged particles available to carry it, so that the MHD picture must, at some point, fail. Recently, magnetic reconnection in such a structure has been shown to accelerate the wind significantly. This reduces the magnetic field in the comoving frame and, consequently, the required current, enabling the solution to extend to much larger radius. This scenario is discussed and, for the Crab Nebula, the range of validity of the MHD solution is compared with the radius at which the flow appears to terminate. For sufficiently high particle densities, it is shown that a low frequency entropy wave can propagate out to the termination point. In this case, the "termination shock" itself must be responsible for dissipating the wave.
LaTeX 13 pages, 3 figures, typos removed
References in corpus (1)
Cited by in corpus (8)
- Polarization of the Crab pulsar and nebula as observed by the Integral/IBIS telescope
- Pulsed radiation from neutron star winds
- High-energy Emission from Pulsar Magnetospheres
- Winds, B-Fields, and Magnetotails of Pulsars
- Discovery of a Radiation Component from the Vela Pulsar Reaching 20 Teraelectronvolts
- The magnetic field topology in the reconnecting pulsar magnetosphere
- Wave Properties of Isothermal Magneto-Rotational Fluids
- On the internal structure of the current sheet in the pulsar wind