Scattering of Strahl Electrons in the Solar Wind between 0.3 and 1 au: Helios Observations
arXiv:1904.08272 · doi:10.1093/mnras/stz1007
Abstract
Electron velocity distribution functions in the solar wind according to standard models consist of 4 components, of which 3 are symmetric - the core, the halo, and the superhalo, and one is magnetic field-aligned, beam-like population, referred to as the strahl. We analysed in-situ measurements provided by the two Helios spacecrafts to study the behaviour of the last, the strahl electron population, in the inner Solar system between 0.3 and 1 au. The strahl is characterised with a pitch-angle width (PAW) depending on electron energy and evolving with radial distance. We find different behaviour of the strahl electrons for solar wind separated into types by the core electron beta parallel value (). For the low- solar wind the strahl component is more pronounced, and the variation of PAW is electron energy dependent. At low energies a slight focusing over distance is observed, and the strahl PAW measured at 0.34 au agrees with the width predicted by a collisionless focusing model. The broadening observed for higher-energy strahl electrons during expansion can be described by an exponential relation, which points toward an energy dependent scattering mechanism. In the high- solar wind the strahl appears broader in consistence with the high- plasma being more unstable with respect to kinetic instabilities. Finally we extrapolate our observations to the distance of 0.16 au, predicting the strahl PAWs in the low- solar wind to be 29 for all energies, and in the high- solar wind a bit broader, ranging between 37 and 65.
References in corpus (3)
Cited by in corpus (24)
- The Solar Orbiter mission -- Science overview
- Electrons in the Young Solar Wind: First Results from the Parker Solar Probe
- Enhanced proton parallel temperature inside patches of switchbacks in the inner heliosphere
- Electron heat flux in the near-Sun environment
- 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
- Whistler wave occurrence and the interaction with strahl electrons during the first encounter of Parker Solar Probe
- Precision Electron Measurements in the Solar Wind at 1 au from NASA's Wind Spacecraft
- 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
- Parker Solar Probe evidence for scattering of electrons in the young solar wind by narrowband whistler-mode waves
- Collisionless heat flux regulation via electron firehose instability in presence of a core and suprathermal population in the expanding solar wind
- Whistler instabilities from the interplay of electron anisotropies in space plasmas: A quasilinear approach
- Stability of superthermal strahl electrons in the solar wind
- Particle energization in colliding subcritical collisionless shocks investigated in the laboratory
- The Stability of the Electron Strahl against the Oblique Fast-magnetosonic/Whistler Instability in the Inner Heliosphere
- Statistics of Solar Wind Electron Breakpoint Energies Using Machine Learning Techniques
- Quantifying the diffusion of suprathermal electrons by whistler waves between 0.2 and 1 AU with Solar Orbiter and Parker Solar Probe
- Stochastic diffusion of electrons interacting with whistler-mode waves in the solar wind
- The aperiodic firehose instability of counter-beaming electrons in space plasmas
- Whistler waves in the young solar wind: statistics of amplitude and propagation direction from Parker Solar Probe Encounters 1-11
- Reconstruction of Polarization Properties of Whistler Waves From Two Magnetic and Two Electric Field Components: Application to Parker Solar Probe Measurements
- Numerical simulations of temperature anisotropy instabilities stimulated by suprathermal protons
- Heat-flux Instabilities of Regularized Kappa Distributed Strahl Electrons Resolved with ALPS
- Ambipolar electric field and potential in the solar wind estimated from electron velocity distribution functions