Evidence for the helicity barrier from measurements of the turbulence transition range in the solar wind
arXiv:2407.10815 · doi:10.1103/PhysRevX.15.031008
Abstract
The means by which the turbulent cascade of energy is dissipated in the solar wind, and in other astrophysical systems, is a major open question. It has recently been proposed that a barrier to the transfer of energy can develop at small scales, which can enable heating through ion-cyclotron resonance, under conditions applicable to regions of the solar wind. Such a scenario fundamentally diverges from the standard picture of turbulence, where the energy cascade proceeds unimpeded until it is dissipated. Here, using data from NASA's Parker Solar Probe, we find that the shape of the magnetic energy spectrum around the ion gyroradius varies with solar wind parameters in a manner consistent with the presence of such a barrier. This allows us to identify critical values of some of the parameters necessary for the barrier to form; we show that the barrier appears fully developed for ion plasma beta of below and becomes increasingly prominent with imbalance for normalised cross helicity values greater than . As these conditions are frequently met in the solar wind, particularly close to the Sun, our results suggest that the barrier is likely playing a significant role in turbulent dissipation in the solar wind and so is an important mechanism in explaining its heating and acceleration.
References in corpus (18)
- Turbulent Heating in Galaxy Clusters Brightest in X-rays
- The Evolution and Role of Solar Wind Turbulence in the Inner Heliosphere
- Recent progress in astrophysical plasma turbulence from solar wind observations
- First in-situ Measurements of Electron Density and Temperature from Quasi-Thermal Noise Spectroscopy with Parker Solar Probe/FIELDS
- Parker Solar Probe: Four Years of Discoveries at Solar Cycle Minimum
- Strong Imbalanced Turbulence
- Ion Scale Electromagnetic Waves in the Inner Heliosphere
- Violation of the zeroth law of turbulence in space plasmas
- Enhanced proton parallel temperature inside patches of switchbacks in the inner heliosphere
- Anisotropy of Solar-Wind Turbulence in the Inner Heliosphere at Kinetic Scales: PSP Observations
- Inner-Heliosphere Signatures of Ion-Scale Dissipation and Nonlinear Interaction
- A Merged Search-Coil and Fluxgate Magnetometer Data Product for Parker Solar Probe FIELDS
- Nature of stochastic ion heating in the solar wind: testing the dependence on plasma beta and turbulence amplitude
- Magnetic Helicity Conservation and Inverse Energy Cascade in Electron Magnetohydrodynamic Wave Packets
- The Ion Transition Range of Solar Wind Turbulence in the Inner Heliosphere: Parker Solar Probe Observations
- Magnetic field spectral evolution in the inner heliosphere
- Estimation of turbulent proton and electron heating rates via Landau damping constrained by Parker Solar Probe observations
- Electron-ion heating partition in imbalanced solar-wind turbulence
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- Perpendicular ion heating in turbulence and reconnection: magnetic moment breaking by coherent fluctuations
- Turbulent heating in collisionless low-beta plasmas: imbalance, Landau damping, and electron-ion energy partition