Coronal Mass Ejections: The Billion-Tonne Plasma Bursts That Knock Out Satellites and Power Grids
Aishwarya Kapoor | Times Life Bureau | Aug 24, 2026, 07:55 IST
Coronal Mass Ejections: The Billion-Tonne Plasma Bursts That Knock Out Satellites and Power Grids
Image credit : Times Life Bureau
The Sun occasionally hurls a billion tonnes of magnetised plasma into space at speeds of up to 3,000 kilometres per second. When that plasma hits Earth, it can fry satellites, collapse power grids, and blind GPS systems for days. Here is what a coronal mass ejection actually is, what it does, and why every space agency, including ISRO, is watching for the next big one.
A star that occasionally throws a punch
These events originate in the corona, the Sun's outermost atmospheric layer, where magnetic field lines can become so tangled and stressed that they snap and reconnect violently, a process called magnetic reconnection. The energy released in that snap is what launches the plasma cloud outward. The Sun produces anywhere from one coronal mass ejection every few days during its quieter periods to several per day near the peak of its roughly 11-year activity cycle. The Sun entered Solar Cycle 25 around 2019 and has been climbing toward its maximum, which means ejection frequency has been rising.
What happens when the plasma arrives at Earth
When the magnetic field embedded in the incoming plasma is oriented opposite to Earth's own field, the two fields partially cancel each other. This allows charged particles to pour into the magnetosphere in enormous quantities, triggering what scientists call a geomagnetic storm. The storm is measured on the Kp index, a scale from 0 to 9. A Kp of 5 is a minor storm. The Carrington Event of 1859, the most powerful geomagnetic storm in recorded history, would have scored close to a 9. It set telegraph wires on fire across Europe and North America. Operators reported receiving shocks from their equipment even after disconnecting the batteries, because the geomagnetically induced currents in the ground were strong enough to power the lines on their own.
A Carrington-scale event today would not burn telegraph wires. It would burn transformer cores inside high-voltage power substations. A 2008 report by the US National Academy of Sciences estimated that a storm of that magnitude could cause $1 to $2 trillion in damage in the United States alone and leave parts of the country without power for months, because the specialised transformers that would fail are manufactured in small numbers and take up to two years to replace.
Satellites, GPS, and the invisible infrastructure at risk
GPS accuracy degrades during storms because the charged particles in the ionosphere, the layer of atmosphere between roughly 60 and 1,000 kilometres altitude, alter the speed at which GPS signals travel. A signal that normally takes a precisely known time to reach your phone arrives slightly late, and the receiver interprets that delay as distance. During a strong storm, GPS positioning errors can reach tens of metres, which is catastrophic for aircraft navigation, precision agriculture, and the timing systems that synchronise financial transactions and mobile networks.
Radio communications, particularly high-frequency bands used by aviation and maritime sectors, can black out entirely when a solar flare accompanies the ejection. The flare travels at the speed of light and arrives at Earth eight minutes after leaving the Sun, long before the plasma cloud does. This X-ray burst ionises the sunlit side of the ionosphere and absorbs radio signals, creating what is called a shortwave fadeout. Airlines flying polar routes, which pass through regions where the magnetic shielding is thinnest, are the most exposed.
How ISRO and the global network track them
Aditya-L1 joins a network of spacecraft that includes NASA's Advanced Composition Explorer, which has been monitoring the solar wind from the same Lagrange point since 1997, and the Parker Solar Probe, which has been flying closer to the Sun than any previous spacecraft, passing through the corona itself in 2021, to study the mechanisms that accelerate solar wind and launch these ejections. The data from these missions feeds into space weather forecasting centres, including NOAA's Space Weather Prediction Center in the United States and the Indian Institute of Geomagnetism in Mumbai, which issue alerts to satellite operators, power grid managers, and aviation authorities.
The May 2024 geomagnetic storm, the strongest in about two decades, reaching G5 on NOAA's geomagnetic storm scale, produced auroras visible across northern India, including reports from Ladakh and parts of Himachal Pradesh. It also caused GPS disruptions and triggered protective shutdowns on some power grid equipment in North America and Europe. ISRO's Aditya-L1 was operational during the event and collected data on the multiple coronal mass ejections that caused it.
The question of preparation
The Sun does not announce which ejection will be the large one. The Carrington Event was preceded by a smaller storm that had partially cleared the path through the solar wind, allowing the second, larger ejection to travel faster than it would have otherwise. That sequence, a clearing storm followed by a faster, more damaging one, is now called a cannibal coronal mass ejection, and forecasters watch for it specifically.
The billion tonnes of plasma the Sun threw in 1859 arrived at a world with copper telegraph wire and no satellites. The same mass, moving at the same speed, aimed at the same planet now, would find a civilisation that has built its navigation, communication, finance, and power distribution on systems that treat a stable electromagnetic environment as a permanent given. The storm does not change. The exposure does.