Charting Earth’s Submerged Microcontinents

My name is Luca Magri

In particular, I am studying unique seafloor features - the submarine ridges that reveal the geological processes involved in microcontinent

I am interested in how continents break-up and disperse. The separation of continental fragments from the main continent can occur at both passive and active continental margins. Active continental margins are where tectonic plates converge or subduct (such as along the Ring of Fire), or move parallel to each other in opposite directions, called a transform fault (like the San Andreas Fault in California). Passive continental margins are located away from plate tectonic boundaries, and in these areas, microcontinents are formed through the rise of a mantle plume (Müller et al. 2001).

Based on current geological data, it is postulated that a subduction system under northeast Australia may have influenced microcontinent formation in the Coral Sea during the Cretaceous ( ~100 million years ago) (Broek and Gaina 2020). As the subsiding plate was increasing its angle of subduction under the Australian plate, the upper plate started stretching. It formed new oceanic crust that resulted in the opening of the Coral Sea and the isolation of the Mellish Rise, Louisiade, Papuan, and Kenn plateaus.

Aboard Falkor, we are able to study the ancient signatures of subduction, rifting, and mantle plumes, using the multibeam to identify different shapes and features and the magnetometer to measure the magnetic intensity of the ocean floor. We are currently investigating the Kenn Plateau, a microcontinent that makes up part of Zealandia (New Zealand). We hope our new detailed seafloor maps of microcontinents will allow us to contribute new pieces to the complex puzzle of this part of the planet and put submerged parts of Earth’s hidden continent Zealandia on the map.

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