In-situ Measurement of the Energy Fraction in Supra-thermal and Energetic Particles at ACE, Wind, and PSP Interplanetary Shocks
arXiv:2202.11029 · doi:10.3847/1538-4357/ac54af
Abstract
The acceleration of charged particles by interplanetary shocks (IPs) can drain a non-negligible fraction of the plasma pressure. In this study, we have selected 17 IPs observed in-situ at by the Advanced Composition Explorer (ACE) and the Wind spacecraft, and 1 shock at observed by Parker Solar Probe (PSP). We have calculated the time-dependent partial pressure of supra-thermal and energetic particles (smaller and greater than for protons and for electrons, respectively) in both the upstream and downstream regions. The particle fluxes were averaged for 1 hour before and 1 hour after the shock time to remove short time scale effects. Using the MHD Rankine-Hugoniot jump conditions, we find that the fraction of the total upstream energy flux transferred to supra-thermal and energetic downstream particles is typically , in agreement with previous observations and simulations. Notably, by accounting for errors on all measured shock parameters, we have found that for any given fast magnetosonic Mach number, , the angle between the shock normal and average upstream magnetic field, , is not correlated with the energetic particle pressure; in particular, the partial pressure of energized particles does not decrease for . The downstream electron-to-proton energy ratio in the range for electrons and for protons exceeds the expected and nears equipartition () for the Wind events.
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