Helium in the Earth's foreshock: a global Vlasiator survey

Author:

Battarbee MarkusORCID,Blanco-Cano XóchitlORCID,Turc LucileORCID,Kajdič PrimožORCID,Johlander Andreas,Tarvus Vertti,Fuselier Stephen,Trattner KarlheinzORCID,Alho Markku,Brito ThiagoORCID,Ganse UrsORCID,Pfau-Kempf YannORCID,Akhavan-Tafti MojtabaORCID,Karlsson TomasORCID,Raptis SavvasORCID,Dubart Maxime,Grandin MaximeORCID,Suni JonasORCID,Palmroth MinnaORCID

Abstract

Abstract. The foreshock is a region of space upstream of the Earth's bow shock extending along the interplanetary magnetic field (IMF). It is permeated by shock-reflected ions and electrons, low-frequency waves, and various plasma transients. We investigate the extent of the He2+ foreshock using Vlasiator, a global hybrid-Vlasov simulation. We perform the first numerical global survey of the helium foreshock and interpret some historical foreshock observations in a global context. The foreshock edge is populated by both proton and helium field-aligned beams, with the proton foreshock extending slightly further into the solar wind than the helium foreshock and both extending well beyond the ultra-low frequency (ULF) wave foreshock. We compare our simulation results with Magnetosphere Multiscale (MMS) Hot Plasma Composition Analyzer (HPCA) measurements, showing how the gradient of suprathermal ion densities at the foreshock crossing can vary between events. Our analysis suggests that the IMF cone angle and the associated shock obliquity gradient can play a role in explaining this differing behaviour. We also investigate wave–ion interactions with wavelet analysis and show that the dynamics and heating of He2+ must result from proton-driven ULF waves. Enhancements in ion agyrotropy are found in relation to, for example, the ion foreshock boundary, the ULF foreshock boundary, and specular reflection of ions at the bow shock. We show that specular reflection can describe many of the foreshock ion velocity distribution function (VDF) enhancements. Wave–wave interactions deep in the foreshock cause de-coherence of wavefronts, allowing He2+ to be scattered less than protons.

Funder

European Research Council

Luonnontieteiden ja Tekniikan Tutkimuksen Toimikunta

Publisher

Copernicus GmbH

Subject

Space and Planetary Science,Earth and Planetary Sciences (miscellaneous),Atmospheric Science,Geology,Astronomy and Astrophysics

Reference64 articles.

1. Andrés, N., Meziane, K., Mazelle, C., Bertucci, C., and Gómez, D.: The ULF wave foreshock boundary: Cluster observations, J. Geophys. Res.-Space Phys., 120, 4181–4193, https://doi.org/10.1002/2014JA020783, 2015. a

2. Battarbee, M.: Supplementary Video A, TIB AV-Portal, https://doi.org/10.5446/46641 (last access: 20 March 2020), 2020a. a

3. Battarbee, M.: Supplementary Video B, TIB AV-Portal, https://doi.org/10.5446/46638 (last access: 20 March 2020), 2020b. a

4. Battarbee, M.: Supplementary Video C, TIB AV-Portal, https://doi.org/10.5446/46639 (last access: 20 March 2020), 2020c. a

5. Battarbee, M.: Supplementary Video D, TIB AV-Portal, https://doi.org/10.5446/46640 (last access: 20 March 2020), 2020d. a

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