Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity

Poster Session 17h: Data and modelling constraints on late Cenozoic biogeochemical cycling, export productivity and meridional circulation modes It was recently suggested that the AMOC dramatically weakened during the last century, which is thought to be exceptional during the last millenium1. This...

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Main Authors: Not, CA, Thibodeau, B
Format: Conference Object
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10722/246450
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spelling ftunivhongkonghu:oai:hub.hku.hk:10722/246450 2023-05-15T17:35:16+02:00 Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity Not, CA Thibodeau, B 2017 http://hdl.handle.net/10722/246450 eng eng Goldschmidt Conference, 2017 Goldschmidt Conference, Paris, France, 13-18 August 2017. In Goldschmidt Abstracts 2017, abstract no. 3156 abstract no. 3156 277302 http://hdl.handle.net/10722/246450 Conference_Paper 2017 ftunivhongkonghu 2023-01-14T16:21:55Z Poster Session 17h: Data and modelling constraints on late Cenozoic biogeochemical cycling, export productivity and meridional circulation modes It was recently suggested that the AMOC dramatically weakened during the last century, which is thought to be exceptional during the last millenium1. This weakening should translate into a decrease in the strength of the Labrador Current (LC), the Labrador Subarctic Slope Water (LSSW) and the recirculation gyre in the western North Atlantic. Consequently, this should allow the Gulf Stream to penetrate onto the East Canadian shelf. Interestingly, this change should be recorded by Laurentian channel bottom water, which take its source at around 450 meters depth. We observed strong similarity between the instrumental temperature of the Laurentian channel bottom water and the AMOC-index1 for the last 70 years. In addition, recent warming in the Laurentian Channel was attributed to a change in the proportion of water masses entering the channel, namely an increase proportion of Atlantic Temperate Slope Water (ATSW). Interestingly, the increase of the ATSW was seen in annually-resolved 15N from corals off the East Canadian coast suggesting the increased presence of nutrient-rich water during the last century, a unique feature of the last millennium2. Thus, we believe that temperature of the Laurentian channel bottom water can serve as a robust proxy to reconstruct the AMOC intensity. This present a crucial advantage: temperature is a relatively straightforward parameter to reconstruct and δ18O of benthic foraminifera was proven a solid temperature proxy for this water mass3. Here we used sediment record from the Laurentian Channel to investigate the presence of warm water originating from the Gulf Stream and thus the AMOC intensity. Our results suggest that the last century warming is unprecedented not only for the last millennium but for the last 6 000 years. Conference Object North Atlantic Subarctic University of Hong Kong: HKU Scholars Hub
institution Open Polar
collection University of Hong Kong: HKU Scholars Hub
op_collection_id ftunivhongkonghu
language English
description Poster Session 17h: Data and modelling constraints on late Cenozoic biogeochemical cycling, export productivity and meridional circulation modes It was recently suggested that the AMOC dramatically weakened during the last century, which is thought to be exceptional during the last millenium1. This weakening should translate into a decrease in the strength of the Labrador Current (LC), the Labrador Subarctic Slope Water (LSSW) and the recirculation gyre in the western North Atlantic. Consequently, this should allow the Gulf Stream to penetrate onto the East Canadian shelf. Interestingly, this change should be recorded by Laurentian channel bottom water, which take its source at around 450 meters depth. We observed strong similarity between the instrumental temperature of the Laurentian channel bottom water and the AMOC-index1 for the last 70 years. In addition, recent warming in the Laurentian Channel was attributed to a change in the proportion of water masses entering the channel, namely an increase proportion of Atlantic Temperate Slope Water (ATSW). Interestingly, the increase of the ATSW was seen in annually-resolved 15N from corals off the East Canadian coast suggesting the increased presence of nutrient-rich water during the last century, a unique feature of the last millennium2. Thus, we believe that temperature of the Laurentian channel bottom water can serve as a robust proxy to reconstruct the AMOC intensity. This present a crucial advantage: temperature is a relatively straightforward parameter to reconstruct and δ18O of benthic foraminifera was proven a solid temperature proxy for this water mass3. Here we used sediment record from the Laurentian Channel to investigate the presence of warm water originating from the Gulf Stream and thus the AMOC intensity. Our results suggest that the last century warming is unprecedented not only for the last millennium but for the last 6 000 years.
format Conference Object
author Not, CA
Thibodeau, B
spellingShingle Not, CA
Thibodeau, B
Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
author_facet Not, CA
Thibodeau, B
author_sort Not, CA
title Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
title_short Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
title_full Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
title_fullStr Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
title_full_unstemmed Laurentian Channel Bottom Water Temperature as a Proxy for AMOC Intensity
title_sort laurentian channel bottom water temperature as a proxy for amoc intensity
publishDate 2017
url http://hdl.handle.net/10722/246450
genre North Atlantic
Subarctic
genre_facet North Atlantic
Subarctic
op_relation Goldschmidt Conference, 2017
Goldschmidt Conference, Paris, France, 13-18 August 2017. In Goldschmidt Abstracts 2017, abstract no. 3156
abstract no. 3156
277302
http://hdl.handle.net/10722/246450
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