Sediment gravity transport on the Weddell Sea continental margin

Understanding sediment gravity transport and continental slope processes has become increasingly important, especially with the current emphasis upon oil and gas exploration in the deep marine environment. Core x-radiography and textural and mineralogic analysis of sediment samples from Weddell Sea...

Full description

Bibliographic Details
Main Author: Wright, Robyn
Other Authors: Anderson, John B., Casey, Richard E.;Clark, Howard C.
Format: Thesis
Language:English
Published: 1980
Subjects:
Online Access:https://hdl.handle.net/1911/104016
id ftriceuniv:oai:scholarship.rice.edu:1911/104016
record_format openpolar
spelling ftriceuniv:oai:scholarship.rice.edu:1911/104016 2023-05-15T18:43:10+02:00 Sediment gravity transport on the Weddell Sea continental margin Wright, Robyn Anderson, John B. Casey, Richard E.;Clark, Howard C. 1980 102 pp reformatted digital application/pdf https://hdl.handle.net/1911/104016 eng eng Wright, Robyn. "Sediment gravity transport on the Weddell Sea continental margin." (1980) Master’s Thesis, Rice University. https://hdl.handle.net/1911/104016 . https://hdl.handle.net/1911/104016 RICE1642 Thesis Geol. 1980 Wright Thesis Text 1980 ftriceuniv 2022-08-09T20:39:38Z Understanding sediment gravity transport and continental slope processes has become increasingly important, especially with the current emphasis upon oil and gas exploration in the deep marine environment. Core x-radiography and textural and mineralogic analysis of sediment samples from Weddell Sea piston cores has enabled identification of several mechanisms of sediment mass transport which significantly influence sedimentation on the continental slope, abyssal plain, and continental shelf. End member processes such as debris flows and turbidity currents are found to occur throughout the eastern Weddell Sea, between °W and 45°W; however textural and visual evidence also substantiates the presence of sediment gravity flow processes which are transitional between end-member mechanisms. Downslope transition in sediment character between slump, debris flow, and turbidite deposits is related to a corresponding transition in the mechanics of grain support and transport. Because most material transported to the marine environment in the Weddell Sea is of poorly sorted glacial origin, analysis of the competence of the marine transport agents is augmented. Textural and mineralogic sorting within the turbidity current mechanism, for example, is found to be extremely efficient. Generation of well sorted quartz-rich sands from poorly sorted lithic source material occurs over relatively short distances, and proves to be a mechanism by which potentially large amounts of quartz sands are produced in the Weddell Sea. The intimate association of these sands with glacial sediments offers an alternative explanation for the quartzite/diamictite associations in ancient sequences which have been cited as evidence against a glacial origin for these deposits. Thesis Weddell Sea Rice University: Digital Scholarship Archive Weddell Weddell Sea
institution Open Polar
collection Rice University: Digital Scholarship Archive
op_collection_id ftriceuniv
language English
description Understanding sediment gravity transport and continental slope processes has become increasingly important, especially with the current emphasis upon oil and gas exploration in the deep marine environment. Core x-radiography and textural and mineralogic analysis of sediment samples from Weddell Sea piston cores has enabled identification of several mechanisms of sediment mass transport which significantly influence sedimentation on the continental slope, abyssal plain, and continental shelf. End member processes such as debris flows and turbidity currents are found to occur throughout the eastern Weddell Sea, between °W and 45°W; however textural and visual evidence also substantiates the presence of sediment gravity flow processes which are transitional between end-member mechanisms. Downslope transition in sediment character between slump, debris flow, and turbidite deposits is related to a corresponding transition in the mechanics of grain support and transport. Because most material transported to the marine environment in the Weddell Sea is of poorly sorted glacial origin, analysis of the competence of the marine transport agents is augmented. Textural and mineralogic sorting within the turbidity current mechanism, for example, is found to be extremely efficient. Generation of well sorted quartz-rich sands from poorly sorted lithic source material occurs over relatively short distances, and proves to be a mechanism by which potentially large amounts of quartz sands are produced in the Weddell Sea. The intimate association of these sands with glacial sediments offers an alternative explanation for the quartzite/diamictite associations in ancient sequences which have been cited as evidence against a glacial origin for these deposits.
author2 Anderson, John B.
Casey, Richard E.;Clark, Howard C.
format Thesis
author Wright, Robyn
spellingShingle Wright, Robyn
Sediment gravity transport on the Weddell Sea continental margin
author_facet Wright, Robyn
author_sort Wright, Robyn
title Sediment gravity transport on the Weddell Sea continental margin
title_short Sediment gravity transport on the Weddell Sea continental margin
title_full Sediment gravity transport on the Weddell Sea continental margin
title_fullStr Sediment gravity transport on the Weddell Sea continental margin
title_full_unstemmed Sediment gravity transport on the Weddell Sea continental margin
title_sort sediment gravity transport on the weddell sea continental margin
publishDate 1980
url https://hdl.handle.net/1911/104016
geographic Weddell
Weddell Sea
geographic_facet Weddell
Weddell Sea
genre Weddell Sea
genre_facet Weddell Sea
op_relation Wright, Robyn. "Sediment gravity transport on the Weddell Sea continental margin." (1980) Master’s Thesis, Rice University. https://hdl.handle.net/1911/104016 .
https://hdl.handle.net/1911/104016
RICE1642
Thesis Geol. 1980 Wright
_version_ 1766233024807043072