English

Particle acceleration efficiencies in astrophysical shear flows

Astrophysics 2009-11-10 v1

Abstract

The acceleration of energetic particles in astrophysical shear flows is analyzed. We show that in the presence of a non-relativistic gradual velocity shear, power law particle momentum distributions f(p)p(3+α)f(p) \propto p^{-(3+\alpha)} may be generated, assuming a momentum-dependent scattering time τpα\tau \propto p^{\alpha}, with α>0\alpha > 0. We consider possible acceleration sites in astrophysical jets and study the conditions for efficient acceleration. It is shown, for example, that in the presence of a gradual shear flow and a gyro-dependent particle mean free path, synchrotron radiation losses no longer stop the acceleration once it has started to work efficiently. This suggests that shear acceleration may naturally account for a second, non-thermal population of energetic particles in addition to a shock-accelerated one. The possible relevance of shear acceleration is briefly discussed with reference to the relativistic jet in the quasar 3C 273.

Keywords

Cite

@article{arxiv.astro-ph/0502094,
  title  = {Particle acceleration efficiencies in astrophysical shear flows},
  author = {F. M. Rieger and P. Duffy},
  journal= {arXiv preprint arXiv:astro-ph/0502094},
  year   = {2009}
}

Comments

6 pages, 2 figures; typos corrected wrt to published version, Proc. of the "International Symposium on High Energy Gamma-Ray Astronomy" Heidelberg (2004), eds. F.A. Aharonian, H.J. Voelk and D. Horns (AIP, NY)

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