Impact of oceanic processes on the carbon cycle during the last termination
During the last termination (from ~18 000 years ago to ~9000 years ago), the climate significantly warmed and the ice sheets melted. Simultaneously, atmospheric CO 2 increased from ~190 ppm to ~260 ppm. Although this CO 2 rise plays an important role in the deglacial warming, the reasons for its evo...
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ftdoajarticles:oai:doaj.org/article:c4c30d0f8d0442f7ad746b3ef1af924e 2023-05-15T13:35:24+02:00 Impact of oceanic processes on the carbon cycle during the last termination N. Bouttes D. Paillard D. M. Roche C. Waelbroeck M. Kageyama A. Lourantou E. Michel L. Bopp 2012-01-01T00:00:00Z https://doi.org/10.5194/cp-8-149-2012 https://doaj.org/article/c4c30d0f8d0442f7ad746b3ef1af924e EN eng Copernicus Publications http://www.clim-past.net/8/149/2012/cp-8-149-2012.pdf https://doaj.org/toc/1814-9324 https://doaj.org/toc/1814-9332 doi:10.5194/cp-8-149-2012 1814-9324 1814-9332 https://doaj.org/article/c4c30d0f8d0442f7ad746b3ef1af924e Climate of the Past, Vol 8, Iss 1, Pp 149-170 (2012) Environmental pollution TD172-193.5 Environmental protection TD169-171.8 Environmental sciences GE1-350 article 2012 ftdoajarticles https://doi.org/10.5194/cp-8-149-2012 2022-12-31T13:04:24Z During the last termination (from ~18 000 years ago to ~9000 years ago), the climate significantly warmed and the ice sheets melted. Simultaneously, atmospheric CO 2 increased from ~190 ppm to ~260 ppm. Although this CO 2 rise plays an important role in the deglacial warming, the reasons for its evolution are difficult to explain. Only box models have been used to run transient simulations of this carbon cycle transition, but by forcing the model with data constrained scenarios of the evolution of temperature, sea level, sea ice, NADW formation, Southern Ocean vertical mixing and biological carbon pump. More complex models (including GCMs) have investigated some of these mechanisms but they have only been used to try and explain LGM versus present day steady-state climates. In this study we use a coupled climate-carbon model of intermediate complexity to explore the role of three oceanic processes in transient simulations: the sinking of brines, stratification-dependent diffusion and iron fertilization. Carbonate compensation is accounted for in these simulations. We show that neither iron fertilization nor the sinking of brines alone can account for the evolution of CO 2 , and that only the combination of the sinking of brines and interactive diffusion can simultaneously simulate the increase in deep Southern Ocean δ 13 C. The scenario that agrees best with the data takes into account all mechanisms and favours a rapid cessation of the sinking of brines around 18 000 years ago, when the Antarctic ice sheet extent was at its maximum. In this scenario, we make the hypothesis that sea ice formation was then shifted to the open ocean where the salty water is quickly mixed with fresher water, which prevents deep sinking of salty water and therefore breaks down the deep stratification and releases carbon from the abyss. Based on this scenario, it is possible to simulate both the amplitude and timing of the long-term CO 2 increase during the last termination in agreement with ice core data. The atmospheric δ 13 C ... Article in Journal/Newspaper Antarc* Antarctic ice core Ice Sheet NADW Sea ice Southern Ocean Directory of Open Access Journals: DOAJ Articles Antarctic Southern Ocean The Antarctic Climate of the Past 8 1 149 170 |
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Open Polar |
collection |
Directory of Open Access Journals: DOAJ Articles |
op_collection_id |
ftdoajarticles |
language |
English |
topic |
Environmental pollution TD172-193.5 Environmental protection TD169-171.8 Environmental sciences GE1-350 |
spellingShingle |
Environmental pollution TD172-193.5 Environmental protection TD169-171.8 Environmental sciences GE1-350 N. Bouttes D. Paillard D. M. Roche C. Waelbroeck M. Kageyama A. Lourantou E. Michel L. Bopp Impact of oceanic processes on the carbon cycle during the last termination |
topic_facet |
Environmental pollution TD172-193.5 Environmental protection TD169-171.8 Environmental sciences GE1-350 |
description |
During the last termination (from ~18 000 years ago to ~9000 years ago), the climate significantly warmed and the ice sheets melted. Simultaneously, atmospheric CO 2 increased from ~190 ppm to ~260 ppm. Although this CO 2 rise plays an important role in the deglacial warming, the reasons for its evolution are difficult to explain. Only box models have been used to run transient simulations of this carbon cycle transition, but by forcing the model with data constrained scenarios of the evolution of temperature, sea level, sea ice, NADW formation, Southern Ocean vertical mixing and biological carbon pump. More complex models (including GCMs) have investigated some of these mechanisms but they have only been used to try and explain LGM versus present day steady-state climates. In this study we use a coupled climate-carbon model of intermediate complexity to explore the role of three oceanic processes in transient simulations: the sinking of brines, stratification-dependent diffusion and iron fertilization. Carbonate compensation is accounted for in these simulations. We show that neither iron fertilization nor the sinking of brines alone can account for the evolution of CO 2 , and that only the combination of the sinking of brines and interactive diffusion can simultaneously simulate the increase in deep Southern Ocean δ 13 C. The scenario that agrees best with the data takes into account all mechanisms and favours a rapid cessation of the sinking of brines around 18 000 years ago, when the Antarctic ice sheet extent was at its maximum. In this scenario, we make the hypothesis that sea ice formation was then shifted to the open ocean where the salty water is quickly mixed with fresher water, which prevents deep sinking of salty water and therefore breaks down the deep stratification and releases carbon from the abyss. Based on this scenario, it is possible to simulate both the amplitude and timing of the long-term CO 2 increase during the last termination in agreement with ice core data. The atmospheric δ 13 C ... |
format |
Article in Journal/Newspaper |
author |
N. Bouttes D. Paillard D. M. Roche C. Waelbroeck M. Kageyama A. Lourantou E. Michel L. Bopp |
author_facet |
N. Bouttes D. Paillard D. M. Roche C. Waelbroeck M. Kageyama A. Lourantou E. Michel L. Bopp |
author_sort |
N. Bouttes |
title |
Impact of oceanic processes on the carbon cycle during the last termination |
title_short |
Impact of oceanic processes on the carbon cycle during the last termination |
title_full |
Impact of oceanic processes on the carbon cycle during the last termination |
title_fullStr |
Impact of oceanic processes on the carbon cycle during the last termination |
title_full_unstemmed |
Impact of oceanic processes on the carbon cycle during the last termination |
title_sort |
impact of oceanic processes on the carbon cycle during the last termination |
publisher |
Copernicus Publications |
publishDate |
2012 |
url |
https://doi.org/10.5194/cp-8-149-2012 https://doaj.org/article/c4c30d0f8d0442f7ad746b3ef1af924e |
geographic |
Antarctic Southern Ocean The Antarctic |
geographic_facet |
Antarctic Southern Ocean The Antarctic |
genre |
Antarc* Antarctic ice core Ice Sheet NADW Sea ice Southern Ocean |
genre_facet |
Antarc* Antarctic ice core Ice Sheet NADW Sea ice Southern Ocean |
op_source |
Climate of the Past, Vol 8, Iss 1, Pp 149-170 (2012) |
op_relation |
http://www.clim-past.net/8/149/2012/cp-8-149-2012.pdf https://doaj.org/toc/1814-9324 https://doaj.org/toc/1814-9332 doi:10.5194/cp-8-149-2012 1814-9324 1814-9332 https://doaj.org/article/c4c30d0f8d0442f7ad746b3ef1af924e |
op_doi |
https://doi.org/10.5194/cp-8-149-2012 |
container_title |
Climate of the Past |
container_volume |
8 |
container_issue |
1 |
container_start_page |
149 |
op_container_end_page |
170 |
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1766065242581762048 |