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Matrix imaging as a tool for high-resolution monitoring of deep volcanic plumbing systems with seismic noise

Earth Sciences

Matrix imaging as a tool for high-resolution monitoring of deep volcanic plumbing systems with seismic noise

E. Giraudat, A. Burtin, et al.

Discover the groundbreaking method used by Elsa Giraudat and colleagues to monitor volcanic activity at La Soufrière in Guadeloupe. This innovative approach utilizes seismic noise data, offering high-resolution mapping of the magmatic system, crucial for accurate volcanic forecasting.

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~3 min • Beginner • English
Abstract
Volcanic eruptions necessitate precise monitoring of magma pressure and inflation for improved forecasting. Understanding deep magma storage is crucial for hazard assessment, yet imaging these systems is challenging due to complex heterogeneities that disrupt standard seismic migration techniques. Here we map the magmatic and hydrothermal system of the La Soufrière volcano in Guadeloupe by analyzing seismic noise data from a sparse geophone array under a matrix formalism. Seismic noise interferometry provides a reflection matrix containing the signature of echoes from deep heterogeneities. Using wave correlations resistant to disorder, matrix imaging successfully unscrambles wave distortions, revealing La Soufrière's internal structure down to 10 km with 100 m resolution. This method surpasses the diffraction limit imposed by geophone array aperture, providing crucial data for modeling and high-resolution monitoring. We see matrix imaging as a revolutionary tool for understanding volcanic systems and enhancing observatories’ abilities to monitor dynamics and forecast eruptions.
Publisher
Communications Earth & Environment
Published On
Sep 16, 2024
Authors
Elsa Giraudat, Arnaud Burtin, Arthur Le Ber, Mathias Fink, Jean-Christophe Komorowski, Alexandre Aubry
Tags
volcanic eruptions
magma pressure
seismic noise
La Soufrière
monitoring
hydrothermal system
high-resolution
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