English

Non-equilibrium effects in steady relativistic $e^+e^-\gamma$ winds

Astrophysics 2009-10-30 v1

Abstract

We consider an ultra-relativistic wind consisting of electron-positron pairs and photons with the principal goal of finding the asymptotic Lorentz factor γ\gamma_{\infty} for zero baryon number. The wind is assumed to originate at radius rir_i where it has a Lorentz factor γi\gamma_i and a temperature TiT_i sufficiently high to maintain pair equilibrium. As rr increases, TT decreases and becomes less than the temperature corresponding to the electron mass mem_e, after which non-equilibrium effects become important. Further out in the flow the optical depth τ\tau drops below one, but the pairs may still be accelerated by the photons until τ\tau falls below 2×105γi3/4\sim 2\times10^{-5} \gamma_{i}^{3/4}. 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 γ\gamma by a factor 45\sim 45 as compared to its value at the photosphere; it is shown to approach γ1.4×103(ri/106\mboxcm)1/4γi3/4Ti/me\gamma_{\infty} \sim 1.4\times 10^3 (r_i/10^6\mbox{cm})^{1/4} \gamma_{i}^{3/4} T_i/m_e.

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

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