Wednesday, July 22, 2026

 

Most powerful Northern Lights in a generation 'exposed weaknesses in UK infrastructure'





Royal Astronomical Society






Millions of people across the UK marvelled at the spectacular Northern Lights that lit up the night sky in May 2024. But while the display captivated skywatchers, the geomagnetic storm behind it also served as the biggest test in a generation of the UK's preparedness for severe space weather.

So did it pass?

Unfortunately not, according to scientists from the Space Environment Impacts Expert Group (SEIEG). They identified multiple infrastructure threats that the storm exposed and made 14 recommendations to better protect British electricity supplies, satellites, aviation and other critical infrastructure from future space weather events.

The group's findings were presented this week at the Royal Astronomical Society's National Astronomy Meeting in Birmingham by SEIEG Chair Professor Richard Horne, of the British Antarctic Survey.

The May 2024 storm reached G5 – the highest category on the US National Oceanic and Atmospheric Administration's (NOAA) geomagnetic storm scale. The storm's strength came from the combined effects of five successive coronal mass ejections striking Earth one after the other over the course of two days.

While that specific storm caused relatively minor disruption in the UK, it highlighted large gaps in the country's resilience to more severe events. The team's recommendations include better monitoring of the electricity grid, strengthening satellite operations, enhancing aviation preparedness and developing more accurate space weather forecasts.

Professor Horne said: "The Northern Lights were the most visible sign of the May 2024 storm, but they were only one part of a much broader space weather event that tested the UK's critical infrastructure. The storm highlighted where we need better monitoring, better forecasting and more research so we're prepared for a more severe event in the future."

The recommendations were submitted to the government and are now under consideration.

The May 2024 storm was estimated to be around a one-in-13-year event. By comparison, a Carrington-class event on the scale of the great solar storm of 1859 has an estimated 1 per cent chance of occurring in any given year, making even more severe space weather a realistic future risk.

One of the key concerns is the electricity network. Geomagnetic storms can drive electrical currents through power transmission systems, potentially damaging transformers and disrupting electricity supplies. 

Professor Horne said: "During the May 2024 event, computer models suggested currents exceeded 50 amps at several substations, with a peak of around 68 amps. However, because there are currently no instruments measuring these currents anywhere in England or Wales, those estimates cannot even be checked."

The team recommends the deployment of a network of geomagnetically induced current monitors across England and Wales to determine how much current different transformer types can safely withstand. They note that New Zealand, which experiences comparable space weather conditions because it sits at a similar geomagnetic latitude as the UK in the opposite hemisphere, already monitors more than 80 transformer sites and successfully used its mitigation plans during the May 2024 storm.

The storm also highlighted growing challenges in Earth's increasingly crowded low-Earth orbit. Almost 5,000 satellites carried out manoeuvres during the storm, compared with around 300 before it began, while UK-licensed satellites experienced a 35 per cent increase in collision warnings. Further work is needed to understand how severe space weather could increase the risk of collisions and cascading debris events, in which satellite collisions create debris that can trigger further collisions.

The team also calls for improved forecasting of coronal mass ejections and solar energetic particle events, with a long-term goal of providing reliable forecasts of severe geomagnetic storms two to three hours before they strike Earth. Better warnings would allow operators of power grids, satellites and aircraft to take action before the worst impacts occur.

Professor Horne said: "One of the biggest lessons from the May 2024 storm is that we still have important gaps in our monitoring and understanding of how severe space weather could affect UK infrastructure.

"We were fortunate that this was not a one-in-100-year event. We now have an opportunity to strengthen our monitoring, improve our forecasts and make sure the UK is better prepared before a much larger storm occurs."

ENDS

Images & captions

Image 1: VIIRS satellite image showing the aurora borealis over the Northern Hemisphere on 10–11 May.

https://drive.google.com/file/d/1UCD6cfUHJG6FspaCM1SBQvwFG6sOtv6q/view?usp=drive_link 

Credit: NOAA / Public Domain

 

Image 2: Aurora borealis seen over the south coast of England, produced by the May 2024 solar storm.

https://commons.wikimedia.org/wiki/File:May_2024_Aurora_Borealis_from_South_Coast_UK.jpg 

Credit: TheresNoTime / CC BY-SA 4.0

 

Image 3: Aurora borealis seen over Cwmbran, Wales, produced by the May 2024 solar storm. 

https://en.wikipedia.org/wiki/May_2024_solar_storms#/media/File:Aurora_Borealis_from_Cwmbran,_Wales.png 

Credit: THEORACLE / CC BY-SA 4.0


Further information

  • The SEIEG is an independent committee of experts drawn from academia, research institutes, companies and agencies. Its purpose is to assess the science related to space weather, review the impact on people and modern infrastructure and provide support and advice to the UK Met Office and government departments.
  • The May 2024 solar activity produced multiple eruptions between 7 and 11 May, but the Earth-directed coronal mass ejections that drove the storm in this study arrived from the evening of 10 May into 11 May.
  • During a geomagnetic storm, changes in Earth’s magnetic field create electric fields at ground level called geomagnetically induced currents (GICs). These electric fields can drive unwanted electrical currents through long conductive systems such as power lines, pipelines and railway signalling networks. In electricity grids, GICs can flow through transformers. Large currents can cause transformers to overheat, behave abnormally or, in extreme cases, become damaged and contribute to power outages. 
  • New Zealand provides a useful case study because it is at a similar geomagnetic latitude to the UK and has already done several things the UK has not: 
    • NZ monitors GICs at around 93 transformers across 28 substations, whereas England and Wales currently have no direct GIC monitoring. 
    • NZ has validated its models against real measurements. 
    • NZ has operational mitigation procedures that were used successfully during the May 2024 storm.

 

The talk 'The May 2024 Geomagnetic Storm: UK Experience and Research Needs' took place at NAM2026 at 15:30 BST on Monday 20 July 2026 in room TLC118/119. Find out more at: https://uobevents-national-astronomy-meeting-2026.eventsairsite.com/block-schedule. If you would like a Zoom link to watch it back, please email press@ras.ac.uk


Notes for editors

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