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Scientists find water was fueling volcanoes 3 billion years ago

Дата публикации: 13-09-2026 03:14:19

Ancient rocks from Western Australia suggest water was reaching deep inside Earth more than three billion years ago, long before modern plate tectonics may have fully developed. Researchers propose that water-rich pieces of crust periodically sank into the mantle through a process they call “dripduction.” The buried water then helped produce magma and volcanic eruptions.

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Geologists studying some of Earth's oldest volcanic rocks have found evidence that water was already influencing the planet's interior and helping drive volcanic activity more than three billion years ago.

The international team, led by Adelaide University geochemist Dr. Eric Vandenburg, examined ancient rocks from Western Australia's Pilbara Craton. Their analysis suggests that water had traveled far beneath the surface before contributing to the formation of magma that fed volcanoes resembling those found around the Pacific "Ring of Fire" today.

Published in Nature Communications, the findings indicate that Earth may have been recycling water between its surface and interior much earlier than scientists had realized, even though the young planet operated very differently from the world we know now.

A Rare Look at the Young Earth

Dr. Vandenburg, from the School of Physics, Chemistry and Earth Sciences, said the ancient rocks offer an unusual opportunity to investigate conditions on Earth billions of years ago.

"These rocks formed more than three billion years ago, when Earth was a very different place," he said.

Today, plate tectonics plays a central role in moving water through the planet. At subduction zones, one tectonic plate sinks beneath another, carrying water from the oceans down toward the mantle. That water can help generate magma, which rises toward the surface and contributes to the volcanoes that help build continents.

"The early Earth was too hot for plates to behave that way, so until now it has been unclear whether surface water could have made that journey more than three billion years ago, and if so, how.

"What surprised us was finding evidence that large amounts of water had already made their way deep into the Earth's interior and influenced the formation of volcanic rocks."

A Process Called "Dripduction"

The researchers suggest that another geological mechanism may have moved water into the mantle before modern plate tectonics became established.

They call the process "dripduction." In this scenario, dense, water-rich portions of Earth's cooler outer crust periodically sagged downward and collapsed into the hotter mantle, transporting water with them.

As those sections of crust descended, they released their water into the mantle. That water then helped generate magma, which eventually rose, erupted through volcanoes, and cooled into rocks that have survived for billions of years.

"The Earth wasn't operating exactly as it does now, but it appears some of the key processes were already in place," Dr. Vandenburg said.

When Did Earth Begin Recycling Its Surface?

The discovery addresses a major question in geology: how early did materials begin moving between Earth's surface and its deep interior?

Pinpointing when water first started traveling deep underground matters because this recycling process affects volcanic activity, the growth of continents, and the movement of ingredients that are important for life.

The findings may also help scientists better understand how Earth's continents developed and how the planet gradually evolved into its modern form.

Chemical Clues From 3.1 Billion Years Ago

Rocks from this period are extremely rare, which makes the Pilbara especially valuable. The region contains some of the best-preserved rocks from the early Earth, giving researchers a rare record of processes that occurred billions of years ago.

By studying chemical signatures locked inside the rocks, the team was able to reconstruct geological events dating back roughly 3.1 billion years.

The results suggest that Earth's surface and deep interior were interacting much earlier than previously recognized. Rather than being relatively static, the young planet appears to have been surprisingly dynamic and was already recycling one of its most essential substances: water.

The study involved researchers from Adelaide University, Monash University, the Geological Survey of Western Australia, Curtin University, the Australian National University, Cardiff University and the GEOMAR Helmholtz Center for Ocean Research in Germany.

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