English

Two-Stream Instability of Counter-Rotating Galaxies

Astrophysics 2009-10-28 v1

Abstract

The present study of the two-stream instability in stellar disks with counter-rotating components of stars and/or gas is stimulated by recently discovered counter-rotating spiral and S0 galaxies. Strong linear two-stream instability of tightly-wrapped spiral waves is found for one and two-armed waves with the pattern angular speed of the unstable waves always intermediate between the angular speed of the co-rotating matter (+Ω+\Omega) and that of the counter-rotating matter (Ω-\Omega). The instability arises from the interaction of positive and negative energy modes in the co- and counter-rotating components. The unstable waves are in general convective - they move in radius and radial wavenumber space - with the result that amplification of the advected wave is more important than the local growth rate. For a galaxy of co-rotating stars and counter-rotating stars of mass-fraction ξ<12\xi_* < {1\over 2}, or of counter-rotating gas of mass-fraction ξg<12\xi_g < {1\over 2}, the largest amplification is usually for the one-armed leading waves (with respect to the co-rotating stars). For the case of both counter-rotating stars and gas, the largest amplifications are for ξ+ξg12\xi_*+\xi_g \approx {1\over 2}, also for one-armed leading waves. The two-armed trailing waves usually have smaller amplifications. The growth rates and amplifications all decrease as the velocity spreads of the stars and/or gas increase. It is suggested that the spiral waves can provide an effective viscosity for the gas causing its accretion.

Keywords

Cite

@article{arxiv.astro-ph/9605076,
  title  = {Two-Stream Instability of Counter-Rotating Galaxies},
  author = {R. V. E. Lovelace and K. P. Jore and M. P. Haynes},
  journal= {arXiv preprint arXiv:astro-ph/9605076},
  year   = {2009}
}

Comments

14 pages, submitted to ApJ. One table and 17 figures can be obtained by sending address to R. Lovelace at RVL1@cornell.edu

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