Using Solar Orbiter as an Upstream Solar Wind Monitor for Real Time Space Weather Predictions

Author:

Laker R.1ORCID,Horbury T. S.1,O’Brien H.1ORCID,Fauchon‐Jones E. J.1,Angelini V.1,Fargette N.1,Amerstorfer T.2ORCID,Bauer M.2,Möstl C.2,Davies E. E.2,Davies J. A.3,Harrison R.3ORCID,Barnes D.3ORCID,Dumbović M.4

Affiliation:

1. Imperial College London, Blackett Laboratory South Kensington UK

2. Austrian Space Weather Office Graz Austria

3. RAL Space, STFC Rutherford Appleton Laboratory Didcot UK

4. Hvar Observatory, Faculty of Geodesy, University of Zagreb Zagreb Croatia

Abstract

AbstractCoronal mass ejections (CMEs) can create significant disruption to human activities and systems on Earth, much of which can be mitigated with prior warning of the upstream solar wind conditions. However, it is currently extremely challenging to accurately predict the arrival time and internal structure of a CME from coronagraph images alone. In this study, we take advantage of a rare opportunity to use Solar Orbiter, at 0.5 au upstream of Earth, as an upstream solar wind monitor. In combination with low‐latency images from STEREO‐A, we successfully predicted the arrival time of two CME events before they reached Earth. Measurements at Solar Orbiter were used to constrain an ensemble of simulation runs from the ELEvoHI model, reducing the uncertainty in arrival time from 10.4 to 2.5 hr in the first case study. There was also an excellent agreement in the Bz profile between Solar Orbiter and Wind spacecraft for the second case study, despite being separated by 0.5 au and 10° longitude. The opportunity to use Solar Orbiter as an upstream solar wind monitor will repeat once a year, which should further help assess the efficacy upstream in‐situ measurements in real time space weather forecasting.

Publisher

American Geophysical Union (AGU)

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