14 March 2018

Underwater volcano behavior captured by timely scientific expedition

Posted by Nanci Bompey

By Hayley Dunning

Researchers got a rare opportunity to study an underwater volcano in the Caribbean when it erupted while they were surveying the area.

The research, published online in the journal Geochemistry, Geophysics, Geosystems, a journal of the American Geophysical Union, provides new insight into the little-studied world of underwater volcanoes. It investigated a volcano named Kick-‘em-Jenny (KeJ), which is thought to be named after the turbulent waters nearby.

The team from Imperial College London, Southampton and Liverpool universities, in collaboration with The University of the West Indies Seismic Research Centre (SRC), were collecting ocean-bottom seismometers aboard the NERC research ship R.R.S. James Cook as part of a larger experiment when they were alerted to the volcano erupting.

Direct observation of submarine eruptions are very rare, but having the ship nearby allowed them to get to the volcano in time to record the immediate aftermath of the eruption.

Using ship-based imaging technology, the team was able to survey the volcano, observing gas coming from the central cone. The data was then combined with previous surveys going back more than 30 years to reveal the long-term pattern of activity.

In a new study, scientists conducted bathymetric surveys of the Kick-’em-Jenny volcano in 2016 and 2017. They combined this with four previous surveys of the volcano, made between 1985 and 2014, covering a number of these periods of unrest. This movie shows two of those surveys: a 2017 survey performed by the R.R.S. James Cook, which shows a close-up view of the cone of Kick-‘em-Jenny and a 3D rendering of the gas released during that survey; and a regional 2013 survey collected by the R/V Nautilus.

Unique view

Kick-‘em-Jenny is one of the Caribbean’s most active volcanoes. It sits eight kilometers off the northern coast of the island of Grenada, and was first discovered in 1939 when a 300-meter column of ash and dust was spotted rising from the ocean.

However, volcanic activity at KeJ is usually detected by accompanying seismic activity picked up on land-based seismometers. These recordings show that the volcano is active on a decadal timescale.

“There are surveys of the Kick-‘em-Jenny area going back 30 years, but our survey in April 2017 is unique in that it immediately followed an eruption,” said Robert Allen, a PhD student from the Department of Earth Science & Engineering at Imperial and lead author of the new study. “This gave us unprecedented data on what this volcanic activity actually looks like, rather than relying on interpreting seismic signals.”

The team found that the volcano has frequent cycles of lava ‘dome’ growth followed by collapse through landslides. Similar cycles have been recently witnessed on the nearby volcanic island of Montserrat.

“Kick-‘em-Jenny is a very active volcano but because it is submarine is less well studied than other volcanoes in the Caribbean,” said Jenny Collier, from the Department of Earth Science & Engineering at Imperial, and a co-author of the new study. “Our research shows that whilst it has quite regular cycles, it is on a relatively small scale, which will help inform future monitoring strategies.”

“This study has confirmed very useful recent insights on the activity and evolution of Kick-‘em-Jenny volcano,” said SRC Director Professor Richard Robertson. “For us, the agency with responsibility for monitoring this volcano, the results of this collaborative research project enable us to better quantify our existing model of this volcano and help in developing strategies for managing future eruptions.”

Any volcano on land which was as lively as KeJ would be constantly monitored by satellites and an array of local instruments looking for the slightest change in behaviour that could precede a major volcanic eruption.

Under the ocean this job is much more difficult, as the electromagnetic energy emitted by satellites cannot penetrate the sea surface and instruments are much more difficult to set up on the volcano itself. Scientists therefore know comparatively little about the growth and long-term behaviour of a fully submerged volcanic cone like KeJ.

The most famous submarine volcanoes are those that lead to the formation of new islands, such as the eruption of Surtsey in Iceland in the 1960s. However, rather than a growing cone, the surveys show significant mass loss from KeJ due to frequent landslides in recent decades.

Comparison with recent studies elsewhere has shown that similar, frequent, small volume landslides may be a fundamental mechanism in the long-term evolution of active submarine volcanoes.

— Hayley Dunning is a research media officer at Imperial College London. This post originally appeared as a press release on the Imperial College website.