This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: Like tendrils on a vine, lava spreads out from the northern crater of Krasheninnikov, a volcano pair on the Pacific coast of Russia's Kamchatka Peninsula. On July 30, 2025, an 8.8-magnitude earthquake struck in the nearby ocean, apparently jolting one of the two volcanoes awake.
A few days later, for the first time in nearly five centuries, Krasheninnikov started erupting. Since then, the northern volcano has been spilling a steady, eastward-flowing field of molten rock and debris, and the NASA-ISRO Synthetic Aperture Radar (NISAR) mission has been tracking the changes in the landscape. From its vantage point 464 miles (747 kilometers) above the surface, NISAR captured an image of Krasheninnikov on Dec. 25, 2025, as the Earth-observing satellite was finishing post-launch checks and becoming operational.
Twice every 12 days since—once as the satellite passed south to north, and again as it passed north to south—NISAR has returned to the same spot in orbit and taken detailed radar snapshots. Researchers put 17 of the frames captured through mid-August into sequence, forming a time-lapse video that shows lava filling a smaller, inner caldera, then overflowing into a wider crater before widening into a fan. The animation highlights how NISAR's observations can monitor the development of natural hazards, both for science and potentially for emergency response.
Though remote, many of Kamchatka's dozens of volcanoes are closely monitored with ground instruments because they erupt frequently. Not so with Krasheninnikov, which had been quiet since about 1550. That NISAR's L-band radar observed it at all speaks to the satellite's near-global coverage of the planet's land surface at resolutions in the dozens of feet; that it captured the erupting volcano over time shows the precision and reliability of its measurements.
"The consistency is crucial. Twice every 12 days, acquiring in this high-resolution mode and in two observation directions, this shows the promise of NISAR to closely monitor natural hazards," said Matthew Pritchard, a member of the NISAR science team and geophysicist at Cornell University who analyzed the data used to create the animation. The detail in a single NISAR image results from the use of synthetic aperture radar, or SAR, a specialized processing technique pioneered by NASA's Jet Propulsion Laboratory in Southern California for Earth observation from space.
As the satellite orbits, the radar sends thousands of microwave pulses per second to Earth and receives the return signals, each of which is effectively a snapshot in time that contains information about the properties and characteristics of the surface below. The SAR processing combines the many images of the same area, sharpening the view just as a lens brings a blurry object into focus. Each pixel in the individual frames of the Krasheninnikov time-lapse represents about a 30-foot-by-30-foot (10-meter-by-10-meter) square on the surface—about half the size of a tennis court.
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