AI Article Synopsis

  • The style of volcanic eruptions is influenced by how gas and magma separate as they move upward, with strong gas-melt coupling leading to explosive eruptions and weaker coupling causing lava flows.
  • Researchers used x-ray radiography in a high-pressure/high-temperature setup to study bubble dynamics in basaltic magmas, revealing that low-viscosity magmas allow bubbles to merge quickly, maintaining gas-melt coupling.
  • This innovative method enhances understanding of volcanic processes, potentially improving safety measures and risk assessment for volcanic activities.

Article Abstract

Transitions in eruptive style during volcanic eruptions strongly depend on how easily gas and magma decouple during ascent. Stronger gas-melt coupling favors highly explosive eruptions, whereas weaker coupling promotes lava fountaining and lava flows. The mechanisms producing these transitions are still poorly understood because of a lack of direct observations of bubble dynamics under natural magmatic conditions. Here, we combine x-ray radiography with a novel high-pressure/high-temperature apparatus to observe and quantify in real-time bubble growth and coalescence in basaltic magmas from 100 megapascals to surface. For low-viscosity magmas, bubbles coalesce and recover a spherical shape within 3 seconds, implying that, for lava fountaining activity, gas and melt remain coupled during the ascent up to the last hundred meters of the conduit. For higher-viscosity magmas, recovery times become longer, promoting connected bubble pathways. This apparatus opens frontiers in unraveling magmatic/volcanic processes, leading to improved hazard assessment and risk mitigation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11421694PMC
http://dx.doi.org/10.1126/sciadv.ado2585DOI Listing

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