Clarifying the solar wind heat-flux instabilities
arXiv:1806.03947 · doi:10.1093/mnras/sty1567
Abstract
In the solar wind electron velocity distributions reveal two counter-moving populations which may induce electromagnetic (EM) beaming instabilities known as heat flux instabilities. Depending on plasma parameters two distinct branches of whistler and firehose instabilities can be excited. These instabilities are invoked in many scenarios, but their interplay is still poorly understood. An exact numerical analysis is performed to resolve the linear Vlasov-Maxwell dispersion and characterize these two instabilities, e.g., growth rates, wave frequencies and thresholds, enabling to identify their dominance for conditions typically experienced in space plasmas. Of particular interest are the effects of suprathermal Kappa-distributed electrons which are ubiquitous in these environments. The dominance of whistler or firehose instability is highly conditioned by the beam-core relative velocity, core plasma beta and the abundance of suprathermal electrons. Derived in terms of relative drift velocity the instability thresholds show an inverse correlation with the core plasma beta for the whistler modes, and a direct correlation with the core plasma beta for the firehose instability. Suprathermal electrons reduce the effective (beaming) anisotropy inhibiting the firehose modes while the whistler instability is stimulated.
Accepted for publication in MNRAS
References in corpus (5)
- Whistler mode waves and the electron heat flux in the solar wind: Cluster observations
- On the interpretation and applicability of -distributions
- The Electron Temperature and Anisotropy in the Solar Wind. I. Comparison of the Core and Halo Populations
- Dual Maxwellian-Kappa modelling of the solar wind electrons: new clues on the temperature of Kappa populations
- Cumulative effect of Weibel-type instabilities in counterstreaming plasmas with non-Maxwellian anisotropies
Cited by in corpus (31)
- Self-induced Scattering of Strahl Electrons in the Solar Wind
- Electron energy partition across interplanetary shocks: I. Methodology and Data Product
- Electron acceleration in non-relativistic quasi-perpendicular collisionless shocks
- Nonlinear evolution of the whistler heat flux instability
- Electron heat flux in the near-Sun environment
- Firehose instabilities triggered by the solar wind suprathermal electrons
- Particle-In-Cell simulation of whistler heat flux instabilities in the solar wind: heat flux regulation and electron halo formation
- Alternative high plasma beta regimes of electron heat-flux instabilities in the solar wind
- Wave generation and heat flux suppression in astrophysical plasma systems
- Beaming electromagnetic (or heat-flux) instabilities from the interplay with the electron temperature anisotropies
- On the role of solar wind expansion as a source of whistler waves: scattering of suprathermal electrons and heat flux regulation in the inner heliosphere
- Narrowband large amplitude whistler-mode waves in the solar wind and their association with electrons: STEREO waveform capture observations
- Quasilinear Approach of the Whistler Heat-Flux Instability in the Solar Wind
- General dispersion properties of magnetized plasmas with drifting bi-Kappa distributions. DIS-K: DIspersion Solver for Kappa plasmas
- On the entropy of plasmas described with regularized -distributions
- On quasi-parallel whistler waves in the solar wind
- Electron energy partition across interplanetary shocks: III. Analysis
- Quasilinear approach of the cumulative whistler instability in fast solar winds: Constraints of electron temperature anisotropy
- Particle-in-cell simulations of the whistler heat-flux instability in the solar wind conditions
- Collisionless heat flux regulation via electron firehose instability in presence of a core and suprathermal population in the expanding solar wind
- Electron Temperature Anisotropy and Electron Beam Constraints From Electron Kinetic Instabilities in the Solar Wind
- Electromagnetic ion cyclotron instability stimulated by the suprathermal ions in space plasmas: A quasi-linear approach
- Whistler instabilities from the interplay of electron anisotropies in space plasmas: A quasilinear approach
- Electromagnetic Ion-Ion Instabilities in Space Plasmas: Effects of Suprathermal Populations
- Quantifying the diffusion of suprathermal electrons by whistler waves between 0.2 and 1 AU with Solar Orbiter and Parker Solar Probe
- Electron Heat Flux in the Solar Wind: Generalized Approaches to Fluid Transport with a Variety of Skewed Velocity Distributions
- The aperiodic firehose instability of counter-beaming electrons in space plasmas
- Decoding the formation of hammerhead ion populations observed by Parker Solar Probe
- Comparing the counter-beaming and temperature anisotropy driven aperiodic electron firehose instabilities in collisionless plasma environments
- Heat-flux Instabilities of Regularized Kappa Distributed Strahl Electrons Resolved with ALPS
- Hybrid simulations of the proton beam instabilities in the young solar wind. The formation of hammerhead-like distributions