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  3. New Eruption in the Bismarck Sea
 


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Closely spaced volcanic plumes, surrounded by clouds, stream from a growing underwater volcanic platform in this natural-color image captured by the OLI (Operational Land Imager) on Landsat 9 on May 11, 2026, three days after the eruption began. The false-color inset emphasizes the infrared signature of the eruption.
NASA Earth Observatory/Michala Garrison

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Closely spaced volcanic plumes, surrounded by clouds, stream from a growing underwater volcanic platform in this natural-color image captured by the OLI (Operational Land Imager) on Landsat 9 on May 11, 2026, three days after the eruption began. The false-color inset emphasizes the infrared signature of the eruption.
NASA Earth Observatory/Michala Garrison
Natural colorFalse color

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Closely spaced volcanic plumes, surrounded by clouds, stream from a growing underwater volcanic platform in this natural-color image captured by the OLI (Operational Land Imager) on Landsat 9 on May 11, 2026, three days after the eruption began. The false-color inset emphasizes the infrared signature of the eruption.
NASA Earth Observatory/Michala Garrison
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Closely spaced volcanic plumes, surrounded by clouds, stream from a growing underwater volcanic platform in this natural-color image captured by the OLI (Operational Land Imager) on Landsat 9 on May 11, 2026, three days after the eruption began. The false-color inset emphasizes the infrared signature of the eruption.
NASA Earth Observatory/Michala Garrison

Natural color

False color


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Image Details

Closely spaced volcanic plumes, surrounded by clouds, stream from a growing underwater volcanic platform in this natural-color image captured by the OLI (Operational Land Imager) on Landsat 9 on May 11, 2026, three days after the eruption began. The right image emphasizes the infrared signature of the eruption. NASA Earth Observatory images by Michala Garrison.

It’s a truism among oceanographers that there is more accurate mapping of the surface of the

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and
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than of the
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. That’s especially true for the Bismarck Sea, a relatively deep body of water north of Papua New Guinea. It’s an ocean basin with a geologically complex seafloor rife with faults, volcanic features, rifts, scarps, and
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and spreading zones at depths that make high-resolution sonar mapping challenging.

When satellites detected signs of an unexpected submarine volcanic eruption in the Central Bismarck Sea on May 8, 2026, volcanologists were confronted with the reality that no high-resolution maps of the area were available, and relatively little is known about the deep-water eruption setting. The new eruption is thought to be occurring along the Titan Ridge, about 16 kilometers (10 miles) southeast of the location of a submarine eruption in 1972. However, there is little clarity or consensus among scientists about precisely which volcanic feature may be erupting, the original depth of the currently active vent, or when it last erupted.

“The good news is that there are huge opportunities to explore and learn using both government and commercial satellite platforms already in orbit,” said Jim Garvin, the chief scientist at NASA’s Goddard Space Flight Center.

What is known is that seismometers detected a small swarm of earthquakes on May 8, followed soon after by clear signs of a submarine eruption in satellite observations. Beginning on May 9, NASA’s Aqua and Terra satellites captured optical imagery of white, steam-rich volcanic plumes

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, while the ocean color sensor on NASA’s
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(Plankton, Aerosol, Cloud, Ocean Ecosystem) satellite revealed
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surrounding the eruption site.

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Floating pumice and green, discolored water extend southwest from the eruption site as a white volcanic plume drifts west overhead in this image acquired by the
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(Moderate Resolution Imaging Spectroradiometer) on NASA’s
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satellite on May 15, 2026.
NASA Earth Observatory/Michala Garrison

Other satellites observed ash plumes soaring

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into the atmosphere. Higher resolution imagery from the European Space Agency’s
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and the NASA/USGS
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(top) satellites, acquired on May 10 and 11, respectively, captured detailed views of activity near the water surface. The right image at the top of the page shows the same scene in false color (
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), with the inset highlighting the infrared signature of the eruption. On May 12, the
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(Visible Infrared Imaging Radiometer Suite) on
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detected thermal anomalies spanning roughly
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“There must be a lot of hot material near the surface to generate so many thermal anomalies,” said Simon Carn, a volcanologist at Michigan Tech. “This suggests a fairly shallow eruption vent—much shallower than what’s implied by the existing

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, which shows water depths of several hundred meters or more.”

Optical satellite imagery shows intense activity in near-surface water, including large plumes of discolored water and widely distributed steam and ash vents. Both

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– and
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—from both government sources and commercial satellite companies—have captured images of expansive
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(floating volcanic rocks) forming long bands in the surface currents in recent days. 

“We’re now eagerly waiting to see if a new island is about to be born—something that we’ve only rarely been able to observe with satellites as it happens,” Garvin said. If a new island does emerge, volcanologists will be watching it closely to see how it evolves. It could build a

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with a long-lived vent crater, or it could collapse and erode rapidly. The eruption could also take a much more explosive turn if seawater finds its way into the shallow magma chamber that has risen within the growing underwater structure.         

To date, the eruption has been much less explosive than other recent submarine eruptions, such as those at

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and
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in 2021. It seems unlikely that this event will become highly explosive because it appears to be associated with a volcanic ridge near the junction of a
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and a
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, Carn said. “Spreading centers are associated with less explosive activity, while the most explosive eruptions are usually along subduction zones and involve large stratovolcanoes.”

How long the current eruption will persist is unclear. The 1972 event in this general region lasted for just four days, while another submarine eruption that occurred about 100 kilometers away in the

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in 1957 lasted nearly four years.

Garvin and scientists from other institutions are tracking developments closely. He plans to analyze radar data from the NASA-ISRO

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and the ********* Space Agency’s
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to map the contours of any new land that emerges and track how its shape changes over time. If a permanent island forms, Garvin also sees opportunities for researchers, or “island-nauts,” to
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and study how the infant island responds to plant and animal colonization, rainfall, chemical weathering, and other erosive forces, just
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after the Hunga Tonga-Hunga Ha‘apai eruption.

“This new eruption could present an even better opportunity for ‘island-naut’ exploration as we prepare to return to the Moon with women and men via Artemis IV,” he said.

NASA Earth Observatory images by Michala Garrison, using Landsat data from the 

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and MODIS data from NASA 
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 and 
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. Story by Adam Voiland.

Downloads

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May 11, 2026

JPEG (1.20 MB)

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May 11, 2026 (false color)

JPEG (1.41 MB)

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May 15, 2026

JPEG (2.63 MB)

References & Resources

  • ABC (2026, May 19)
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    . Accessed May 20, 2026.  
  • Bureau of Meteorology (2026)
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    . Accessed May 20, 2026.  
  • Carn, S., via Bluesky (2026, May 12)
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    . Accessed May 20, 2026.  
  • Global Volcanism Program (2026, May 13)
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    . Accessed May 20, 2026.  
  • Ikegami, F., via Bluesky (2026, May 19)
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    . Accessed May 20, 2026.  
  • NASA (2026)
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    . Accessed May 20, 2026.  
  • PNG Bulletin (2026, May 20)
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    . Accessed May 20, 2026.  
  • RNZ (2026, May 20)
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    ? Accessed May 20, 2026.  

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