Multi-spacecraft observations of shocklets at an interplanetary shock

Author:

Trotta D1ORCID,Hietala H12,Horbury T1ORCID,Dresing N3,Vainio R3,Wilson L4,Plotnikov I5,Kilpua E6

Affiliation:

1. The Blackett Laboratory, Department of Physics , Imperial College London, London SW1234, UK

2. School of Physics and Astronomy, Queen Mary University of London , London E1 4NS, UK

3. Department of Physics and Astronomy, University of Turku , FI-20014 Turku, Finland

4. NASA Goddard Space Flight Center , Greenbelt, MD 20771, USA

5. IRAP, Université Toulouse III – Paul Sabatier , CNRS, CNES, F-31062 Toulouse, France

6. Department of Physics, University of Helsinki , FI-00014 Helsinki, Finland

Abstract

ABSTRACT Interplanetary (IP) shocks are fundamental building blocks of the heliosphere, and the possibility to observe them in situ is crucial to address important aspects of energy conversion for a variety of astrophysical systems. Steepened waves known as shocklets are known to be important structures of planetary bow shocks, but they are very rarely observed related to IP shocks. We present here the first multi-spacecraft observations of shocklets observed by upstream of an unusually strong IP shock observed on 3 November 2021 by several spacecraft at L1 and near-Earth solar wind. The same shock was detected also by radially aligned Solar Orbiter at 0.8 au from the Sun, but no shocklets were identified from its data, introducing the possibility to study the environment in which shocklets developed. The Wind spacecraft has been used to characterize the shocklets, associated with pre-conditioning of the shock upstream by decelerating incoming plasma in the shock normal direction. Finally, using the Wind observations together with ACE and DSCOVR spacecraft at L1, as well as THEMIS B and THEMIS C in the near-Earth solar wind, the portion of interplanetary space filled with shocklets is addressed, and a lower limit for its extent is estimated to be of about 110RE in the shock normal direction and 25RE in the directions transverse to the shock normal. Using multiple spacecraft also reveals that for this strong IP shock, shocklets are observed for a large range of local obliquity estimates (9º–64º).

Funder

Horizon 2020

Royal Society

University of Turku

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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