Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica

As part of the tripartite, United States - United Kingdom - New Zealand, 1990-1991 South Pacific Rim International Tectonics Expedition, oriented samples were collected for paleomagnetic analysis from mid-Cretaceous (circa 100 Ma) intrusive rocks at sampling localities across 350 km of the Ruppert a...

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Main Authors: DiVenere, Victor J., Kent, Dennis V., Dalziel, I. W. D.
Format: Text
Language:unknown
Published: Columbia University 1994
Subjects:
Online Access:https://dx.doi.org/10.7916/d8ht2zt2
https://academiccommons.columbia.edu/doi/10.7916/D8HT2ZT2
id ftdatacite:10.7916/d8ht2zt2
record_format openpolar
spelling ftdatacite:10.7916/d8ht2zt2 2023-05-15T13:39:07+02:00 Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica DiVenere, Victor J. Kent, Dennis V. Dalziel, I. W. D. 1994 https://dx.doi.org/10.7916/d8ht2zt2 https://academiccommons.columbia.edu/doi/10.7916/D8HT2ZT2 unknown Columbia University Geophysics Text Articles article-journal ScholarlyArticle 1994 ftdatacite https://doi.org/10.7916/d8ht2zt2 2021-11-05T12:55:41Z As part of the tripartite, United States - United Kingdom - New Zealand, 1990-1991 South Pacific Rim International Tectonics Expedition, oriented samples were collected for paleomagnetic analysis from mid-Cretaceous (circa 100 Ma) intrusive rocks at sampling localities across 350 km of the Ruppert and Hobbs Coast area of Marie Byrd Land, West Antarctica. Paleomagnetic results are presented along with several lines of evidence, including a positive tilt test based on the attitude of circa 117 Ma volcanic rocks that the circa 100 Ma rocks intrude, which argue that these results are a representative estimate of the mid-Cretaceous magnetic field in Marie Byrd Land (MBL). The new circa 100 Ma mean south pole (224.1°E/75.7°S, A_95 = 3.8°, N = 19 site means) is concordant with other West Antarctic results of similar age implying that at least Marie Byrd Land, Thurston Island and the Antarctic Peninsula have not experienced any paleomagnetically resolvable relative motion since the mid-Cretaceous. However, the poles from these Pacific-bordering blocks of West Antarctica are significantly offset from a synthetic apparent polar wander path that was produced for the East Antarctic craton, implying relative movement between East Antarctica and Pacific West Antarctica since about 100 Ma. Though the paleomagnetic estimate for east-west Antarctic relative motion may be reconciled with geologic estimates for extension in the Ross Sea at the extremes of the error envelope, the best paleomagnetic estimate of relative motion suggests a larger amount of total extension between East and West Antarctica (MBL) than previously suspected. Both estimates call for several hundreds of kilometers of post-100 Ma displacement between East Antarctica and the Pacific-bordering blocks of West Antarctica. Text Antarc* Antarctic Antarctic Peninsula Antarctica East Antarctica Hobbs coast Marie Byrd Land Ross Sea South pole South pole Thurston Island West Antarctica DataCite Metadata Store (German National Library of Science and Technology) Antarctic The Antarctic Antarctic Peninsula East Antarctica Ross Sea West Antarctica Pacific New Zealand South Pole Byrd Marie Byrd Land ENVELOPE(-130.000,-130.000,-78.000,-78.000) Hobbs ENVELOPE(-57.500,-57.500,-64.300,-64.300) Thurston ENVELOPE(-97.500,-97.500,-71.833,-71.833) Thurston Island ENVELOPE(-99.000,-99.000,-72.167,-72.167) Hobbs Coast ENVELOPE(-136.000,-136.000,-75.500,-75.500)
institution Open Polar
collection DataCite Metadata Store (German National Library of Science and Technology)
op_collection_id ftdatacite
language unknown
topic Geophysics
spellingShingle Geophysics
DiVenere, Victor J.
Kent, Dennis V.
Dalziel, I. W. D.
Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
topic_facet Geophysics
description As part of the tripartite, United States - United Kingdom - New Zealand, 1990-1991 South Pacific Rim International Tectonics Expedition, oriented samples were collected for paleomagnetic analysis from mid-Cretaceous (circa 100 Ma) intrusive rocks at sampling localities across 350 km of the Ruppert and Hobbs Coast area of Marie Byrd Land, West Antarctica. Paleomagnetic results are presented along with several lines of evidence, including a positive tilt test based on the attitude of circa 117 Ma volcanic rocks that the circa 100 Ma rocks intrude, which argue that these results are a representative estimate of the mid-Cretaceous magnetic field in Marie Byrd Land (MBL). The new circa 100 Ma mean south pole (224.1°E/75.7°S, A_95 = 3.8°, N = 19 site means) is concordant with other West Antarctic results of similar age implying that at least Marie Byrd Land, Thurston Island and the Antarctic Peninsula have not experienced any paleomagnetically resolvable relative motion since the mid-Cretaceous. However, the poles from these Pacific-bordering blocks of West Antarctica are significantly offset from a synthetic apparent polar wander path that was produced for the East Antarctic craton, implying relative movement between East Antarctica and Pacific West Antarctica since about 100 Ma. Though the paleomagnetic estimate for east-west Antarctic relative motion may be reconciled with geologic estimates for extension in the Ross Sea at the extremes of the error envelope, the best paleomagnetic estimate of relative motion suggests a larger amount of total extension between East and West Antarctica (MBL) than previously suspected. Both estimates call for several hundreds of kilometers of post-100 Ma displacement between East Antarctica and the Pacific-bordering blocks of West Antarctica.
format Text
author DiVenere, Victor J.
Kent, Dennis V.
Dalziel, I. W. D.
author_facet DiVenere, Victor J.
Kent, Dennis V.
Dalziel, I. W. D.
author_sort DiVenere, Victor J.
title Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
title_short Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
title_full Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
title_fullStr Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
title_full_unstemmed Mid-Cretaceous paleomagnetic results from Marie Byrd Land, West Antarctica: A test of post-100 Ma relative motion between East and West Antarctica
title_sort mid-cretaceous paleomagnetic results from marie byrd land, west antarctica: a test of post-100 ma relative motion between east and west antarctica
publisher Columbia University
publishDate 1994
url https://dx.doi.org/10.7916/d8ht2zt2
https://academiccommons.columbia.edu/doi/10.7916/D8HT2ZT2
long_lat ENVELOPE(-130.000,-130.000,-78.000,-78.000)
ENVELOPE(-57.500,-57.500,-64.300,-64.300)
ENVELOPE(-97.500,-97.500,-71.833,-71.833)
ENVELOPE(-99.000,-99.000,-72.167,-72.167)
ENVELOPE(-136.000,-136.000,-75.500,-75.500)
geographic Antarctic
The Antarctic
Antarctic Peninsula
East Antarctica
Ross Sea
West Antarctica
Pacific
New Zealand
South Pole
Byrd
Marie Byrd Land
Hobbs
Thurston
Thurston Island
Hobbs Coast
geographic_facet Antarctic
The Antarctic
Antarctic Peninsula
East Antarctica
Ross Sea
West Antarctica
Pacific
New Zealand
South Pole
Byrd
Marie Byrd Land
Hobbs
Thurston
Thurston Island
Hobbs Coast
genre Antarc*
Antarctic
Antarctic Peninsula
Antarctica
East Antarctica
Hobbs coast
Marie Byrd Land
Ross Sea
South pole
South pole
Thurston Island
West Antarctica
genre_facet Antarc*
Antarctic
Antarctic Peninsula
Antarctica
East Antarctica
Hobbs coast
Marie Byrd Land
Ross Sea
South pole
South pole
Thurston Island
West Antarctica
op_doi https://doi.org/10.7916/d8ht2zt2
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