Cumulative effect of Weibel-type instabilities in counterstreaming plasmas with non-Maxwellian anisotropies
arXiv:0802.0570 · doi:10.1063/1.2896232
Abstract
Counterstreaming plasma structures are widely present in laboratory experiments and astrophysical systems, and they are investigated either to prevent unstable modes arising in beam-plasma experiments or to prove the existence of large scale magnetic fields in astrophysical objects. Filamentation instability arises in a counterstreaming plasma and is responsible for the magnetization of the plasma. Filamentationally unstable mode is described by assuming that each of the counterstreaming plasmas has an isotropic Lorentzian (kappa) distribution. In this case, the filamentation instability growth rate can reach a maximum value markedly larger than that for a a plasma with a Maxwellian distribution function. This behaviour is opposite to what was observed for the Weibel instability growth rate in a bi-kappa plasma, which is always smaller than that obtained for a bi-Maxwellian plasma. The approach is further generalized for a counterstreaming plasma with a bi-kappa temperature anisotropy. In this case, the filamentation instability growth rate is enhanced by the Weibel effect when the plasma is hotter in the streaming direction, and the growth rate becomes even larger. These effects improve significantly the efficiency of the magnetic field generation, and provide further support for the potential role of the Weibel-type instabilities in the fast magnetization scenarios.
References in corpus (1)
Cited by in corpus (8)
- Shaping the solar wind temperature anisotropy by the interplay of electron and proton instabilities
- On quasi-parallel whistler waves in the solar wind
- Whistler instability stimulated by the suprathermal electrons present in space plasmas
- The Interplay of the Solar Wind Core and Suprathermal Electrons: A Quasilinear Approach for Firehose Instability
- Electromagnetic Ion-Ion Instabilities in Space Plasmas: Effects of Suprathermal Populations
- Electromagnetic ion cyclotron instability stimulated by the suprathermal ions in space plasmas: A quasi-linear approach
- A new low-beta regime for unstable proton firehose modes in bi-Kappa distributed plasmas
- Numerical simulations of temperature anisotropy instabilities stimulated by suprathermal protons