First observations of a geomagnetic superstorm with a sub-L1 monitor
arXiv:2411.12490 · doi:10.1029/2024SW004260
Abstract
Forecasting the geomagnetic effects of solar coronal mass ejections (CMEs) is currently an unsolved problem. CMEs, responsible for the largest values of the north-south component of the interplanetary magnetic field, are the key driver of intense and extreme geomagnetic activity. Observations of southward interplanetary magnetic fields are currently only accessible directly through in situ measurements by spacecraft in the solar wind. On 10-12 May 2024, the strongest geomagnetic storm since 2003 took place, caused by five interacting CMEs. We clarify the relationship between the CMEs, their solar source regions, and the resulting signatures at the Sun-Earth L1 point observed by the ACE spacecraft at 1.00 AU. The STEREO-A spacecraft was situated at 0.956 AU and 12.6° west of Earth during the event, serving as a fortuitous sub-L1 monitor providing interplanetary magnetic field measurements of the solar wind. We demonstrate an extension of the prediction lead time, as the shock was observed 2.57 hours earlier at STEREO-A than at L1, consistent with the measured shock speed at L1, 710 km/s, and the radial distance of 0.04 AU. By deriving the geomagnetic indices based on the STEREO-A beacon data, we show that the strength of the geomagnetic storm would have been decently forecasted, with the modeled minimum SYM-H=-478.5 nT, underestimating the observed minimum by only 8%. Our study sets an unprecedented benchmark for future mission design using upstream monitoring for space weather prediction.
23 pages, 7 figures, 4 tables, submitted to AGU Space Weather on 18 November 2024, accepted on 6 February 2025, published on 17 March 2025
References in corpus (8)
- The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package
- Observations of an extreme storm in interplanetary space caused by successive coronal mass ejections
- Strong coronal channelling and interplanetary evolution of a solar storm up to Earth and Mars
- Determining the Intrinsic CME Flux Rope Type Using Remote-sensing Solar Disk Observations
- Factors Affecting the Geo-effectiveness of Shocks and Sheaths at 1 AU
- Prediction of Geomagnetic Storm Strength from Inner Heliospheric In Situ Observations
- Unveiling Key Factors in the Solar Eruptions Leading to the Solar Superstorm in 2024 May
- Magnetic Field Evolution of the Solar Active Region 13664
Cited by in corpus (5)
- Pinching of ICME Flux Rope: Unprecedented Multipoint Observations of Internal Magnetic Reconnection during Gannon's Superstorm
- Monitoring the Solar Wind Before It Reaches L1
- Comparing observations of the closely located JUICE and STEREO-A spacecraft during the widespread solar energetic particle event of 2024 May 13
- Magnetic interaction analysis of multiple interplanetary coronal mass ejections leading to a historic geomagnetic storm in May 2024
- Investigating potential benefits of future sub-L1 missions with STEREO-A