EGU2020-1901
https://doi.org/10.5194/egusphere-egu2020-1901
EGU General Assembly 2020
© Author(s) 2020. This work is distributed under
the Creative Commons Attribution 4.0 License.

Properties of Suprathermal-through-Energetic He Ions Associated with Stream Interaction Regions Observed over Parker Solar Probe’s First Two Orb¬¬its

Mihir Desai1 and the Parker Solar Probe ISOIS, FIELDS & SWEAP Team*
Mihir Desai and the Parker Solar Probe ISOIS, FIELDS & SWEAP Team
  • 1Southwest Research Institute, Space Science & Engineering, San Antonio, United States of America (mdesai@swri.edu)
  • *A full list of authors appears at the end of the abstract

The Integrated Science Investigation of the Sun (IS☉IS) suite on board NASA’s Parker Solar Probe (PSP) observed six distinct enhancements in the intensities of suprathermal-through-energetic (~0.03-3 MeV nucleon-1) He ions associated with corotating or stream interaction regions during its first two orbits. Our results from a survey of the time-histories of the He intensities, spectral slopes, and anisotropies, and the event-averaged energy spectra during these events show: 1) In the two strongest enhancements, seen at 0.35 au and 0.85 au, the higher energy ions arrive and maximize later than those at lower energies. In the event seen at 0.35 au, the He ions arrive when PSP was away from the SIR trailing edge and entered the rarefaction region in the high-speed stream; 2) The He intensities are either isotropic or show sunward anisotropies in the spacecraft frame; and 3) In all events, the energy spectra between ~0.2–1 MeV nucleon-1are power-laws of the form ∝E-2. In the two strongest events, the energy spectra are well represented by flat power-laws between ~0.03–0.4 MeV nucleon-1modulated by exponential roll-overs between ~0.4–3 MeV nucleon-1. We conclude that the SIR-associated He ions originate from sources or shocks beyond PSP’s location rather than from acceleration processes occurring atnearby portions of local compression regions. Our results also suggest that rarefaction regions that typically follow the SIRs facilitate easier particle transport throughout the inner heliosphere such that low energy ions do not undergo significant energy loss due to adiabatic deceleration, contrary to predictions of existing models.

Parker Solar Probe ISOIS, FIELDS & SWEAP Team:

D. G. Mitchell3, J. R. Szalay4, E. C. Roelof3, J. Giacalone5, M. E. Hill3, D. J. McComas4, E. R. Christian6, N. A. Schwadron7, R. L. McNutt Jr.3, M. E. Wiedenbeck8, C. Joyce4, C. M. S. Cohen8, R. W. Ebert1,2, M. A. Dayeh1,2, R. C. Allen3, A. J. Davis8, S. M. Krimigis3, R. A. Leske8, W. H. Matthaeus9, O. Malandraki10, R. A. Mewaldt8, A. Labrador8, E. C. Stone8, S. D. Bale11, M. Pulupa11, R. J. MacDowall6, and J. C. Kasper12

How to cite: Desai, M. and the Parker Solar Probe ISOIS, FIELDS & SWEAP Team: Properties of Suprathermal-through-Energetic He Ions Associated with Stream Interaction Regions Observed over Parker Solar Probe’s First Two Orb¬¬its, EGU General Assembly 2020, Online, 4–8 May 2020, EGU2020-1901, https://doi.org/10.5194/egusphere-egu2020-1901, 2020

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