English

Energetic Particle Pressure at Interplanetary Shocks: STEREO-A Observations

Space Physics 2015-11-04 v1 Solar and Stellar Astrophysics

Abstract

We study periods of elevated energetic particle intensities observed by STEREO-A when the partial pressure exerted by energetic (\geq83 keV) protons (PEPP_{EP}) is larger than the pressure exerted by the interplanetary magnetic field (PBP_{B}). In the majority of cases, these periods are associated with the passage of interplanetary shocks. Periods when PEPP_{EP} exceeds PBP_{B} by more than one order of magnitude are observed in the upstream region of fast interplanetary shocks where depressed magnetic field regions coincide with increases of the energetic particle intensities. When solar wind parameters are available, PEPP_{EP} also exceeds the pressure exerted by the solar wind thermal population (PTHP_{TH}). Prolonged periods (>>12 h) with both PEPP_{EP}>>PBP_{B} and PEPP_{EP}>>PTHP_{TH} may also occur when energetic particles accelerated by an approaching shock encounter a region well-upstream of the shock characterized by low magnetic field magnitude and tenuous solar wind density. Quasi-exponential increases of the sum PSUMP_{SUM}=PBP_{B}+PTHP_{TH}+PEPP_{EP} are observed in the immediate upstream region of the shocks regardless of individual changes in PEPP_{EP}, PBP_{B} and PTHP_{TH}, indicating a coupling between PEPP_{EP} and the pressure of the background medium characterized by PBP_{B} and PTHP_{TH}. The quasi-exponential increase of PSUMP_{SUM} implies a convected exponential radial gradient PSUM/r\partial{P_{SUM}}/\partial{r}>>0 that results in an outward force applied to the plasma upstream of the shock. This force can be maintained by the mobile energetic particles streaming upstream of the shocks that, in the most intense events, drive electric currents able to generate diamagnetic cavities and depressed solar wind density regions.

Keywords

Cite

@article{arxiv.1509.04368,
  title  = {Energetic Particle Pressure at Interplanetary Shocks: STEREO-A Observations},
  author = {D. Lario and R. B. Decker and E. C. Roelof and A. -F. Vinas},
  journal= {arXiv preprint arXiv:1509.04368},
  year   = {2015}
}

Comments

7 figures, Submitted to The Astrophysical Journal

R2 v1 2026-06-22T10:56:44.245Z