Non-equilibrium effects in steady relativistic $e^+e^-\gamma$ winds
Abstract
We consider an ultra-relativistic wind consisting of electron-positron pairs and photons with the principal goal of finding the asymptotic Lorentz factor for zero baryon number. The wind is assumed to originate at radius where it has a Lorentz factor and a temperature sufficiently high to maintain pair equilibrium. As increases, decreases and becomes less than the temperature corresponding to the electron mass , after which non-equilibrium effects become important. Further out in the flow the optical depth drops below one, but the pairs may still be accelerated by the photons until falls below . Radiative transfer calculations show that only at this point do the radiation flux and pressure start to deviate significantly from their blackbody values. The acceleration of the pairs increases by a factor as compared to its value at the photosphere; it is shown to approach .
Keywords
Cite
@article{arxiv.astro-ph/9805138,
title = {Non-equilibrium effects in steady relativistic $e^+e^-\gamma$ winds},
author = {Ole M. Grimsrud and Ira Wasserman},
journal= {arXiv preprint arXiv:astro-ph/9805138},
year = {2009}
}
Comments
41 pages, 9 figures. Submitted to MNRAS