Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals

Recent observations and past reconstructions have highlighted the significance of the Southern Ocean for modern and past ocean circulation patterns. Deep wind-induced upwelling renders the Southern Ocean unique, such that deep waters are brought directly to the surface where they can exchange with t...

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Bibliographic Details
Main Author: Struve, Torben
Other Authors: van de Flierdt, Tina
Format: Doctoral or Postdoctoral Thesis
Language:unknown
Published: Imperial College London 2016
Subjects:
Online Access:http://hdl.handle.net/10044/1/57119
https://doi.org/10.25560/57119
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spelling ftimperialcol:oai:spiral.imperial.ac.uk:10044/1/57119 2023-05-15T14:01:35+02:00 Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals Struve, Torben van de Flierdt, Tina 2016-02 http://hdl.handle.net/10044/1/57119 https://doi.org/10.25560/57119 unknown Imperial College London Earth Science & Engineering Thesis or dissertation Doctoral Doctor of Philosophy (PhD) 2016 ftimperialcol https://doi.org/10.25560/57119 2019-11-14T23:38:48Z Recent observations and past reconstructions have highlighted the significance of the Southern Ocean for modern and past ocean circulation patterns. Deep wind-induced upwelling renders the Southern Ocean unique, such that deep waters are brought directly to the surface where they can exchange with the atmosphere. Moreover, the Antarctic Circumpolar Current (ACC) is the dominant feature of Southern Ocean circulation linking all ocean basins and facilitating the inter-basin exchange of ocean properties. Hence, Southern Ocean dynamics act to (partly) moderate both, zonal and meridional transports, and both were shown to be sensitive to atmospheric forcing on different time scales. However, due to the remoteness and harsh conditions, direct evidence of past Southern Ocean circulation is scarce. This work uses neodymium (Nd) isotopes extracted from the aragonitic skeletons of deep-sea corals collected in the Drake Passage and at the Tasmanian margin. The fidelity of the skeletal Nd isotope signature was tested in a calibration effort and the nature of Nd in coralline aragonite was explored. Based on the promising results, the approach was then confidently applied to uranium-series dated deep-sea corals in order to decipher Southern Ocean water mass mixing across intervals of past climate perturbations. The results show that Drake Passage and Tasmanian margin corals record complimentary features of Southern Ocean circulation. Intervals of high sampling resolution reveal unexpectedly dynamic and abrupt changes of water mass mixing oscillating on millennial to (sub) centennial time scales during the past ~40,000 years. This thesis explores the nature of the recorded signal in the light of available literature, focusing on phases of abrupt change and fitting the processes considered to drive the Southern Ocean Nd isotope signal into a global framework. Open Access Doctoral or Postdoctoral Thesis Antarc* Antarctic Drake Passage Southern Ocean Imperial College London: Spiral Antarctic Drake Passage Southern Ocean The Antarctic
institution Open Polar
collection Imperial College London: Spiral
op_collection_id ftimperialcol
language unknown
description Recent observations and past reconstructions have highlighted the significance of the Southern Ocean for modern and past ocean circulation patterns. Deep wind-induced upwelling renders the Southern Ocean unique, such that deep waters are brought directly to the surface where they can exchange with the atmosphere. Moreover, the Antarctic Circumpolar Current (ACC) is the dominant feature of Southern Ocean circulation linking all ocean basins and facilitating the inter-basin exchange of ocean properties. Hence, Southern Ocean dynamics act to (partly) moderate both, zonal and meridional transports, and both were shown to be sensitive to atmospheric forcing on different time scales. However, due to the remoteness and harsh conditions, direct evidence of past Southern Ocean circulation is scarce. This work uses neodymium (Nd) isotopes extracted from the aragonitic skeletons of deep-sea corals collected in the Drake Passage and at the Tasmanian margin. The fidelity of the skeletal Nd isotope signature was tested in a calibration effort and the nature of Nd in coralline aragonite was explored. Based on the promising results, the approach was then confidently applied to uranium-series dated deep-sea corals in order to decipher Southern Ocean water mass mixing across intervals of past climate perturbations. The results show that Drake Passage and Tasmanian margin corals record complimentary features of Southern Ocean circulation. Intervals of high sampling resolution reveal unexpectedly dynamic and abrupt changes of water mass mixing oscillating on millennial to (sub) centennial time scales during the past ~40,000 years. This thesis explores the nature of the recorded signal in the light of available literature, focusing on phases of abrupt change and fitting the processes considered to drive the Southern Ocean Nd isotope signal into a global framework. Open Access
author2 van de Flierdt, Tina
format Doctoral or Postdoctoral Thesis
author Struve, Torben
spellingShingle Struve, Torben
Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
author_facet Struve, Torben
author_sort Struve, Torben
title Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
title_short Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
title_full Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
title_fullStr Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
title_full_unstemmed Deciphering glacial-interglacial Southern Ocean dynamics with deep-sea corals
title_sort deciphering glacial-interglacial southern ocean dynamics with deep-sea corals
publisher Imperial College London
publishDate 2016
url http://hdl.handle.net/10044/1/57119
https://doi.org/10.25560/57119
geographic Antarctic
Drake Passage
Southern Ocean
The Antarctic
geographic_facet Antarctic
Drake Passage
Southern Ocean
The Antarctic
genre Antarc*
Antarctic
Drake Passage
Southern Ocean
genre_facet Antarc*
Antarctic
Drake Passage
Southern Ocean
op_doi https://doi.org/10.25560/57119
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