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Seabed stability inferred from the 2019–2020 earthquake swarm under a volcanic cone field and slopes of Condor Seamount, Azores

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Seabed stability inferred from the 2019–2020 earthquake swarm under a volcanic cone field and slopes of Condor Seamount, Azores

DOI: 10.1016/j.jvolgeores.2025.108279

Type: Publication

Year: 2025

Citations: 0

AZORES DEEP-SEA RESEARCH
Publication Open access January 2025

Seabed stability inferred from the 2019–2020 earthquake swarm under a volcanic cone field and slopes of Condor Seamount, Azores

Journal of Volcanology and Geothermal Research

10.1016/j.jvolgeores.2025.108279
Open DOI
Total authors
6
Involved team members
1
Citations
0
References
101

Related to this work

Abstract

Knowledge of the strength of submarine volcaniclastic deposits is important for assessing the stability of slopes of such materials and their geohazards but is dif cult to measure. An opportunity for an alternative evaluation has been presented by an earthquake swarm under a volcanic seamount in the Azores. Attenuation relationships applied to earthquake data suggest that a cone eld and anks of the seamount experienced horizontal accel- erations of >0.3 g during the swarm. However, multibeam sonar data collected before and after the swarm suggest that no slope failures occurred. Furthermore, in backscatter data collected after the swarm, low in- tensities below slopes suggest that muddy aprons were undisturbed by landslide debris. The swarm overlies cones with slopes near typical repose angles of non-cohesive particles. During earthquake shaking, the direction of maximum acceleration deviates from that due to gravity alone. We show that cone slopes effectively experienced much steeper gradients than their repose angles during the swarm. As they survived the shaking without failing, they were effectively stronger than non-cohesive sediment. We use a pseudo-static analysis to investigate the implied sediment strength, nding a ratio of undrained shear strength to vertical stress of >0.4–0.5. This implies shear strength of >24–30 kPa at 10 m depth below seabed. We speculate that carbonate cements and/or compaction may be responsible. If shallow areas are more widely strengthened, slope failure may then be less likely during moderate (ML ~ 4.0 or less) seismic shaking and hence be less hazardous than if the slopes comprised wholly non-cohesive materials.

Authors

1 involved team member
N
Neil C. Mitchell
0000-0002-6483-2450

Department of Earth and Environmental Sciences, University of Manchester, Williamson Building, Oxford Road, Manchester, M13 9PL, UK

F
Fernando Tempera
0000-0001-9495-3731

Instituto de Investigação em Ciências do Mar – Okeanos, Universidade dos Açores, Horta, Portugal

T
Thomas A. Morrow
0000-0003-3942-3847

NOAA Ocean Exploration, Oceanic and Atmospheric Research, National Oceanic and Atmospheric Administration, 1315 East West Hwy, Silver Spring, MD 20910, USA

C
Christian Hübscher

Institute of Geophysics, University of Hamburg, Germany

Record details

Type
article
Language
EN
Volume
460
Pages
108279–108279
ISSN
0377-0273

Keywords

Seamount Geology Volcano Seismology Volcanic cone Seabed Field (mathematics) Swarm behaviour Volcanic rock Oceanography Pure mathematics Mathematical optimization Mathematics

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Location

Institute of Marine Sciences — Okeanos, University of the Azores

Departamento de Oceanografia e Pescas — Universidade dos Açores

Rua Prof. Doutor Frederico Machado, No. 4
9901-862 Horta, Portugal

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