Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core

In the framework of the International Partnerships in Ice Core Sciences, one of the most important targets is to retrieve an Antarctic ice core that extends over the last 1.5 million years (i.e. an ice core that enters the climate era when glacial–interglacial cycles followed the obliquity cycles of...

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Published in:The Cryosphere
Main Authors: Bereiter, B., Fischer, H., Schwander, J., Stocker, T. F.
Format: Text
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.5194/tc-8-245-2014
https://tc.copernicus.org/articles/8/245/2014/
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spelling ftcopernicus:oai:publications.copernicus.org:tc20150 2023-05-15T13:54:27+02:00 Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core Bereiter, B. Fischer, H. Schwander, J. Stocker, T. F. 2018-09-27 application/pdf https://doi.org/10.5194/tc-8-245-2014 https://tc.copernicus.org/articles/8/245/2014/ eng eng doi:10.5194/tc-8-245-2014 https://tc.copernicus.org/articles/8/245/2014/ eISSN: 1994-0424 Text 2018 ftcopernicus https://doi.org/10.5194/tc-8-245-2014 2020-07-20T16:25:11Z In the framework of the International Partnerships in Ice Core Sciences, one of the most important targets is to retrieve an Antarctic ice core that extends over the last 1.5 million years (i.e. an ice core that enters the climate era when glacial–interglacial cycles followed the obliquity cycles of the earth). In such an ice core the annual layers of the oldest ice would be thinned by a factor of about 100 and the climatic information of a 10 000 yr interval would be contained in less than 1 m of ice. The gas record in such an Antarctic ice core can potentially reveal the role of greenhouse gas forcing on these 40 000 yr cycles. However, besides the extreme thinning of the annual layers, also the long residence time of the trapped air in the ice and the relatively high ice temperatures near the bedrock favour diffusive exchanges. To investigate the changes in the O 2 / N 2 ratio, as well as the trapped CO 2 concentrations, we modelled the diffusive exchange of the trapped gases O 2 , N 2 and CO 2 along the vertical axis. However, the boundary conditions of a potential drilling site are not yet well constrained and the uncertainties in the permeation coefficients of the air constituents in the ice are large. In our simulations, we have set the drill site ice thickness at 2700 m and the bedrock ice temperature at 5–10 K below the ice pressure melting point. Using these conditions and including all further uncertainties associated with the drill site and the permeation coefficients, the results suggest that in the oldest ice the precessional variations in the O 2 / N 2 ratio will be damped by 50–100%, whereas CO 2 concentration changes associated with glacial–interglacial variations will likely be conserved (simulated damping 5%). If the precessional O 2 / N 2 signal will have disappeared completely in this future ice core, orbital tuning of the ice-core age scale will be limited. Text Antarc* Antarctic ice core Copernicus Publications: E-Journals Antarctic The Cryosphere 8 1 245 256
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description In the framework of the International Partnerships in Ice Core Sciences, one of the most important targets is to retrieve an Antarctic ice core that extends over the last 1.5 million years (i.e. an ice core that enters the climate era when glacial–interglacial cycles followed the obliquity cycles of the earth). In such an ice core the annual layers of the oldest ice would be thinned by a factor of about 100 and the climatic information of a 10 000 yr interval would be contained in less than 1 m of ice. The gas record in such an Antarctic ice core can potentially reveal the role of greenhouse gas forcing on these 40 000 yr cycles. However, besides the extreme thinning of the annual layers, also the long residence time of the trapped air in the ice and the relatively high ice temperatures near the bedrock favour diffusive exchanges. To investigate the changes in the O 2 / N 2 ratio, as well as the trapped CO 2 concentrations, we modelled the diffusive exchange of the trapped gases O 2 , N 2 and CO 2 along the vertical axis. However, the boundary conditions of a potential drilling site are not yet well constrained and the uncertainties in the permeation coefficients of the air constituents in the ice are large. In our simulations, we have set the drill site ice thickness at 2700 m and the bedrock ice temperature at 5–10 K below the ice pressure melting point. Using these conditions and including all further uncertainties associated with the drill site and the permeation coefficients, the results suggest that in the oldest ice the precessional variations in the O 2 / N 2 ratio will be damped by 50–100%, whereas CO 2 concentration changes associated with glacial–interglacial variations will likely be conserved (simulated damping 5%). If the precessional O 2 / N 2 signal will have disappeared completely in this future ice core, orbital tuning of the ice-core age scale will be limited.
format Text
author Bereiter, B.
Fischer, H.
Schwander, J.
Stocker, T. F.
spellingShingle Bereiter, B.
Fischer, H.
Schwander, J.
Stocker, T. F.
Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
author_facet Bereiter, B.
Fischer, H.
Schwander, J.
Stocker, T. F.
author_sort Bereiter, B.
title Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
title_short Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
title_full Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
title_fullStr Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
title_full_unstemmed Diffusive equilibration of N2, O2 and CO2 mixing ratios in a 1.5-million-years-old ice core
title_sort diffusive equilibration of n2, o2 and co2 mixing ratios in a 1.5-million-years-old ice core
publishDate 2018
url https://doi.org/10.5194/tc-8-245-2014
https://tc.copernicus.org/articles/8/245/2014/
geographic Antarctic
geographic_facet Antarctic
genre Antarc*
Antarctic
ice core
genre_facet Antarc*
Antarctic
ice core
op_source eISSN: 1994-0424
op_relation doi:10.5194/tc-8-245-2014
https://tc.copernicus.org/articles/8/245/2014/
op_doi https://doi.org/10.5194/tc-8-245-2014
container_title The Cryosphere
container_volume 8
container_issue 1
container_start_page 245
op_container_end_page 256
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