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Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake

The M(w) 8.8 megathrust earthquake that occurred on 27 February 2010 offshore the Maule region of central Chile triggered a destructive tsunami. Whether the earthquake rupture extended to the shallow part of the plate boundary near the trench remains controversial. The up-dip limit of rupture during...

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Autores principales: Maksymowicz, A., Chadwell, C. D., Ruiz, J., Tréhu, A. M., Contreras-Reyes, E., Weinrebe, W., Díaz-Naveas, J., Gibson, J. C., Lonsdale, P., Tryon, M. D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381107/
https://www.ncbi.nlm.nih.gov/pubmed/28378757
http://dx.doi.org/10.1038/srep45918
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author Maksymowicz, A.
Chadwell, C. D.
Ruiz, J.
Tréhu, A. M.
Contreras-Reyes, E.
Weinrebe, W.
Díaz-Naveas, J.
Gibson, J. C.
Lonsdale, P.
Tryon, M. D.
author_facet Maksymowicz, A.
Chadwell, C. D.
Ruiz, J.
Tréhu, A. M.
Contreras-Reyes, E.
Weinrebe, W.
Díaz-Naveas, J.
Gibson, J. C.
Lonsdale, P.
Tryon, M. D.
author_sort Maksymowicz, A.
collection PubMed
description The M(w) 8.8 megathrust earthquake that occurred on 27 February 2010 offshore the Maule region of central Chile triggered a destructive tsunami. Whether the earthquake rupture extended to the shallow part of the plate boundary near the trench remains controversial. The up-dip limit of rupture during large subduction zone earthquakes has important implications for tsunami generation and for the rheological behavior of the sedimentary prism in accretionary margins. However, in general, the slip models derived from tsunami wave modeling and seismological data are poorly constrained by direct seafloor geodetic observations. We difference swath bathymetric data acquired across the trench in 2008, 2011 and 2012 and find ~3–5 m of uplift of the seafloor landward of the deformation front, at the eastern edge of the trench. Modeling suggests this is compatible with slip extending seaward, at least, to within ~6 km of the deformation front. After the M(w) 9.0 Tohoku-oki earthquake, this result for the Maule earthquake represents only the second time that repeated bathymetric data has been used to detect the deformation following megathrust earthquakes, providing methodological guidelines for this relatively inexpensive way of obtaining seafloor geodetic data across subduction zone.
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spelling pubmed-53811072017-04-10 Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake Maksymowicz, A. Chadwell, C. D. Ruiz, J. Tréhu, A. M. Contreras-Reyes, E. Weinrebe, W. Díaz-Naveas, J. Gibson, J. C. Lonsdale, P. Tryon, M. D. Sci Rep Article The M(w) 8.8 megathrust earthquake that occurred on 27 February 2010 offshore the Maule region of central Chile triggered a destructive tsunami. Whether the earthquake rupture extended to the shallow part of the plate boundary near the trench remains controversial. The up-dip limit of rupture during large subduction zone earthquakes has important implications for tsunami generation and for the rheological behavior of the sedimentary prism in accretionary margins. However, in general, the slip models derived from tsunami wave modeling and seismological data are poorly constrained by direct seafloor geodetic observations. We difference swath bathymetric data acquired across the trench in 2008, 2011 and 2012 and find ~3–5 m of uplift of the seafloor landward of the deformation front, at the eastern edge of the trench. Modeling suggests this is compatible with slip extending seaward, at least, to within ~6 km of the deformation front. After the M(w) 9.0 Tohoku-oki earthquake, this result for the Maule earthquake represents only the second time that repeated bathymetric data has been used to detect the deformation following megathrust earthquakes, providing methodological guidelines for this relatively inexpensive way of obtaining seafloor geodetic data across subduction zone. Nature Publishing Group 2017-04-05 /pmc/articles/PMC5381107/ /pubmed/28378757 http://dx.doi.org/10.1038/srep45918 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Maksymowicz, A.
Chadwell, C. D.
Ruiz, J.
Tréhu, A. M.
Contreras-Reyes, E.
Weinrebe, W.
Díaz-Naveas, J.
Gibson, J. C.
Lonsdale, P.
Tryon, M. D.
Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title_full Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title_fullStr Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title_full_unstemmed Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title_short Coseismic seafloor deformation in the trench region during the Mw8.8 Maule megathrust earthquake
title_sort coseismic seafloor deformation in the trench region during the mw8.8 maule megathrust earthquake
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5381107/
https://www.ncbi.nlm.nih.gov/pubmed/28378757
http://dx.doi.org/10.1038/srep45918
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