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Universe Today

Reading the Galaxy's Past The Shape of a Black Hole Written in Rock Titan's Hidden Blanket Did Life Start When Impacts Created Vast Hydrothermal Systems in Earth's Crust? Meet REMORA: The Autonomous Space Fleet Built to Tag and Track Asteroids Watch the Moon Occult Venus in the Daytime for North America on June 17th Astrochemical Model Digs Into the Universe's Missing Sulfur Building in Space With Laser "Origami" On The Hunt For Cosmic Dawn And The Universe’s Very First Stars David Kipping Has a New Take on the Existence of Advanced Life in the Universe... and the Numbers are Not Encouraging! This is How Supermassive Black Holes Feed Themselves NASA’s Proposed EVE Mission Aims to Solve the Radius Valley Mystery Where Not to Look in the Search for ET Reading the Moon in X-rays Astronomers Find a Four-Carbon Sugar in Deep Space Why Can't the Universe Be Cyclic? Part 4: When a Good Idea Meets Bad Data Orbiting Stars Give Clues to a Quiescent Black Hole's Mass Magnetic Fields Help Binary Stars Form and Black Holes Merge A Rare Meteorite Just Revealed a Lost, Mars-Sized Planet from the Dawn of the Solar System Neptune’s Weirdest Moon Nereid Might Be the Lone Survivor of an Ancient "Moonpocalypse" Space Telescopes Are Now Overwhelmed by Satellite Trails Why Can't the Universe Be Cyclic? Part 3: The Ekpyrotic Universe and Its Bouncing Branes Catch Comet 220P McNaught in Outburst The Hidden Physics Complicating Interstellar Lightsails Student Astronomer Identifies Source of Mysterious Cosmic Signals Why Can't the Universe Be Cyclic? Part 2: The Awkward Triumph of Inflation The SETI Institute Releases Technosignature Report on 3I/ATLAS Why Can't the Universe Be Cyclic? Part 1: The Lure of the Eternal Universe A “Green” Dual-Mode Engine is About to Give CubeSats the Best of Both Worlds SETI Panel Revises Recommendations for Dealing With 'Disclosure Day' NASA Bids Farewell to MAVEN Mars Mission in Public Teleconference Astronomers Make "Live" Observation of a Nearby Protoplanetary Disk's Rotation The Cosmic Web Like You've Never Seen it Before They've Been Searching for the Milky Way's Black Hole Wind for 50 Years and Finally Found It What Happens to a Star That Captures A Primordial Black Hole? New Cloud-Detecting Method Will Help Astronomers Characterize Exoplanets Even Without A Magnetosphere, Mars Can Still Deflect Some Solar Wind The Unexpected Brightness 'Gap' in an Ancient Globular Cluster Cosmic Tryst: Venus Meets Jupiter at Dusk A Brief-ish History of SETI. Part IX: What Have We Found? A New Map of Stars Shows That the Small Magellanic Cloud is Expanding Here's Why So Many Massive Galaxies in the Early Universe Stop Forming Stars Exoplanetary Weather Watchers Find Strong Evidence of Magnetic Fields Asteroid Dirt is "Fluffier" Than We Thought Blue Origin Issues Official Statement on New Glenn Explosion Astronomers Uncover Statistical Evidence for Recoiling Supermassive Black Holes The Next-Generation Very Large Array Prototype (ngVLA) Gathers its First Light Flash-Melted Glass from Chang'e-5 Reveals a High Levels of Iron on the Moon How Early Earth's Unlikely Chemical Hero Appeared Mars Hid its Warm, Wet Crystals Underground Could the Milky Way’s Missing Mass Be Hiding in a Swarm of Interstellar Comets? Ceres’ Surface Is Much More Complex Than Previously Thought Are the JWST's Early Overrmassive Black Holes Just Normal-Range Outliers? Astrobiology's Looming Statistical Crisis The Filamentary Funnels That Form Stars How Heavy Can a Neutron Star Get? 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When the Sun Tries to Explode and Fails
Mark Thompson · 2026-05-27 · via Universe Today

There is something almost dramatic about a star that tries to hurl a billion tonnes of magnetised plasma into space and simply cannot pull it off. It builds, it strains, it rises and then it stops as if it never happened. a bit like me trying to do press-ups! Scientists call these events failed eruptions, and while they have been observed before, nobody has fully understood why they occur. A new study from the Center for Astrophysics at Harvard & Smithsonian has now provided the most detailed answer yet.

Image artefacts (diffraction spikes and vertical streaks) appearing in a CCD image of a major solar flare due to the excess incident radiation (Credit : NASA Goddard Space Flight Centre) Image artefacts (diffraction spikes and vertical streaks) appearing in a CCD image of a major solar flare due to the excess incident radiation (Credit : NASA Goddard Space Flight Centre)

In March 2024, the Sun produced an intense solar flare from a large and magnetically complex active region. A prominence, a vast cloud of relatively cool, dense gas that began to rise above the solar surface, carried upward by the Sun's twisting magnetic fields, building into what should have been a coronal mass ejection, or CME. These are the Solar System's most powerful eruptions, capable of sending charged particles screaming towards Earth at millions of kilometres per hour, disrupting satellites, power grids, and communications systems. This one should have been significant but instead, it stalled. Then collapsed. It fell back toward the Sun's surface as though it had changed its mind.

"This strong flare should have produced a big eruption but instead, we saw that the eruption stalled and collapsed shortly after its initiation” - Tingyu Gou lead author from the Smithsonian Astrophysical Observatory.

To find out why, the team used multiple spacecraft watching the same event simultaneously from different angles and across many wavelengths of light. NASA's Solar Dynamics Observatory and the Hinode satellite observed from near Earth, while ESA's Solar Orbiter viewed the same eruption from the side. Ground-based telescopes and NASA's IRIS mission added radio and ultraviolet data. Together they built what amounts to a three dimensional portrait of a solar eruption in the act of dying.

Illustration of the IRIS spacecraft (Credit : NASA) Illustration of the IRIS spacecraft (Credit : NASA)

What they found was a double process working against the eruption simultaneously. Below the rising magnetic structure was magnetic reconnection, the breaking and rejoining of field lines that was pushing it upward, as it normally does in solar flares. But above it, a second reconnection process was doing the opposite, cutting into the top of the rising structure and weakening it from above. At the same time, a strong overlying magnetic field was acting like a lid, confining the material and preventing it from breaking free.

The findings, published in Nature Astronomy help us to understand what makes some eruptions fail, helps us predict which ones will succeed, and which ones pose a genuine threat to Earth. But there is a deeper consequence too. Astronomers have long been puzzled by an apparent gap between what they observe on our Sun and on distant Sun like stars. There are plenty of stellar flares detected, but far fewer stellar CMEs and it may be that, if complex magnetic fields routinely cause eruptions to fail across the Galaxy, many stellar CMEs may simply be dying close to their host stars, invisible to our telescopes. Thankfully, our local star the Sun may have just given us the answer.

Source : Astronomers Uncover Why Some Solar Eruptions Die