Estimation of turbulent proton and electron heating rates via Landau damping constrained by Parker Solar Probe observations
arXiv:2301.09713 · doi:10.3847/1538-4357/acb542
Abstract
The heating of ions and electrons due to turbulent dissipation plays a crucial role in the thermodynamics of the solar wind and other plasma environments. Using magnetic field and thermal plasma observations from the first two perihelia of the Parker Solar Probe (PSP), we model the relative heating rates as a function of radial distance, magnetic spectra, and plasma conditions, enabling us to better characterize the thermodynamics of the inner heliosphere. We employ the Howes et al. 2008 steady-state cascade model, which considers the behavior of turbulent, low-frequency, wavevector-anisotropic, critically balanced Alfvénic fluctuations that dissipate via Landau damping to determine proton-to-electron heating rates . We distinguish ion-cyclotron frequency circularly polarized waves from low-frequency turbulence and constrain the cascade model using spectra constructed from the latter. We find that the model accurately describes the observed energy spectrum from over 39.4 percent of the intervals from Encounters 1 and 2, indicating the possibility for Landau damping to heat the young solar wind. The ability of the model to describe the observed turbulent spectra increases with the ratio of thermal-to-magnetic pressure, , indicating that the model contains the necessary physics at higher . We estimate high magnitudes for the Kolmogorov constant which is inversely proportional to the non-linear energy cascade rate. We verify the expected strong dependency of on and the consistency of the critical balance assumption.
References in corpus (10)
- Recent progress in astrophysical plasma turbulence from solar wind observations
- The Solar Probe Cup on Parker Solar Probe
- Evidence for Electron Landau Damping in Space Plasma Turbulence
- Electrons in the Young Solar Wind: First Results from the Parker Solar Probe
- The Spectral Slope and Kolmogorov Constant of MHD turbulence
- Ion Scale Electromagnetic Waves in the Inner Heliosphere
- Parker Solar Probe observations of proton beams simultaneous with ion-scale waves
- Enhanced Energy Transfer Rate in Solar Wind Turbulence Observed near the Sun from Parker Solar Probe
- The Enhancement of Proton Stochastic Heating in the near-Sun Solar Wind
- The Importance of Electron Landau Damping for the Dissipation of Turbulent Energy in Terrestrial Magnetosheath Plasma