Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model

Sonobuoys provide an alternative to using long streamers while conducting multi-channel seismic (MCS) studies, in order to provide deeper velocity control. We present analysis and modeling techniques for interpreting the sonobuoy data and illustrate the method with ten overlapping sonobuoys collecte...

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Published in:Marine Geophysical Research
Main Authors: Selvans, M. M., Clayton, R. W., Stock, J. M., Granot, R.
Format: Article in Journal/Newspaper
Language:unknown
Published: Springer Verlag 2012
Subjects:
Online Access:https://authors.library.caltech.edu/30067/
https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738
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spelling ftcaltechauth:oai:authors.library.caltech.edu:30067 2023-05-15T13:37:29+02:00 Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model Selvans, M. M. Clayton, R. W. Stock, J. M. Granot, R. 2012-03 https://authors.library.caltech.edu/30067/ https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738 unknown Springer Verlag Selvans, M. M. and Clayton, R. W. and Stock, J. M. and Granot, R. (2012) Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model. Marine Geophysical Research, 33 (1). pp. 17-32. ISSN 0025-3235. doi:10.1007/s11001-011-9143-z. https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738 <https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738> Article PeerReviewed 2012 ftcaltechauth https://doi.org/10.1007/s11001-011-9143-z 2021-11-11T18:49:25Z Sonobuoys provide an alternative to using long streamers while conducting multi-channel seismic (MCS) studies, in order to provide deeper velocity control. We present analysis and modeling techniques for interpreting the sonobuoy data and illustrate the method with ten overlapping sonobuoys collected in the Ross Sea, offshore from Antarctica. We demonstrate the importance of using the MCS data to correct for ocean currents and changes in ship navigation, which is required before using standard methods for obtaining a 1D velocity profile from each sonobuoy. We verify our 1D velocity models using acoustic finite-difference (FD) modeling and by performing depth migration on the data, and demonstrate the usefulness of FD modeling for tying interval velocities to the shallow crust imaged using MCS data. Finally, we show how overlapping sonobuoys along an MCS line can be used to construct a 2D velocity model of the crust. The velocity model reveals a thin crust (5.5 ± 0.4 km) at the boundary between the Adare and Northern Basins, and implies that the crustal structure of the Northern Basin may be more similar to that of the oceanic crust in the Adare Basin than to the stretched continental crust further south in the Ross Sea. Article in Journal/Newspaper Antarc* Antarctica Ross Sea Caltech Authors (California Institute of Technology) Adare ENVELOPE(170.233,170.233,-71.283,-71.283) Adare Basin ENVELOPE(175.000,175.000,-71.000,-71.000) Ross Sea Marine Geophysical Research 33 1 17 32
institution Open Polar
collection Caltech Authors (California Institute of Technology)
op_collection_id ftcaltechauth
language unknown
description Sonobuoys provide an alternative to using long streamers while conducting multi-channel seismic (MCS) studies, in order to provide deeper velocity control. We present analysis and modeling techniques for interpreting the sonobuoy data and illustrate the method with ten overlapping sonobuoys collected in the Ross Sea, offshore from Antarctica. We demonstrate the importance of using the MCS data to correct for ocean currents and changes in ship navigation, which is required before using standard methods for obtaining a 1D velocity profile from each sonobuoy. We verify our 1D velocity models using acoustic finite-difference (FD) modeling and by performing depth migration on the data, and demonstrate the usefulness of FD modeling for tying interval velocities to the shallow crust imaged using MCS data. Finally, we show how overlapping sonobuoys along an MCS line can be used to construct a 2D velocity model of the crust. The velocity model reveals a thin crust (5.5 ± 0.4 km) at the boundary between the Adare and Northern Basins, and implies that the crustal structure of the Northern Basin may be more similar to that of the oceanic crust in the Adare Basin than to the stretched continental crust further south in the Ross Sea.
format Article in Journal/Newspaper
author Selvans, M. M.
Clayton, R. W.
Stock, J. M.
Granot, R.
spellingShingle Selvans, M. M.
Clayton, R. W.
Stock, J. M.
Granot, R.
Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
author_facet Selvans, M. M.
Clayton, R. W.
Stock, J. M.
Granot, R.
author_sort Selvans, M. M.
title Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
title_short Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
title_full Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
title_fullStr Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
title_full_unstemmed Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model
title_sort using overlapping sonobuoy data from the ross sea to construct a 2d deep crustal velocity model
publisher Springer Verlag
publishDate 2012
url https://authors.library.caltech.edu/30067/
https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738
long_lat ENVELOPE(170.233,170.233,-71.283,-71.283)
ENVELOPE(175.000,175.000,-71.000,-71.000)
geographic Adare
Adare Basin
Ross Sea
geographic_facet Adare
Adare Basin
Ross Sea
genre Antarc*
Antarctica
Ross Sea
genre_facet Antarc*
Antarctica
Ross Sea
op_relation Selvans, M. M. and Clayton, R. W. and Stock, J. M. and Granot, R. (2012) Using overlapping sonobuoy data from the Ross Sea to construct a 2D deep crustal velocity model. Marine Geophysical Research, 33 (1). pp. 17-32. ISSN 0025-3235. doi:10.1007/s11001-011-9143-z. https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738 <https://resolver.caltech.edu/CaltechAUTHORS:20120412-132057738>
op_doi https://doi.org/10.1007/s11001-011-9143-z
container_title Marine Geophysical Research
container_volume 33
container_issue 1
container_start_page 17
op_container_end_page 32
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