Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes

A new ice core paleothermometer is introduced based on the temperature dependent diffusion of the stable water isotopes in the firn. A new parameter called differential diffusion length is defined as the difference between the diffusion length of the two stable water isotopologues 2 H 1 H 16 O and 1...

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Published in:Climate of the Past
Main Authors: Simonsen, S. B., Johnsen, S. J., Popp, T. J., Vinther, B. M., Gkinis, V., Steen-Larsen, H. C.
Format: Text
Language:English
Published: 2018
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Online Access:https://doi.org/10.5194/cp-7-1327-2011
https://cp.copernicus.org/articles/7/1327/2011/
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spelling ftcopernicus:oai:publications.copernicus.org:cp10625 2023-05-15T16:38:36+02:00 Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes Simonsen, S. B. Johnsen, S. J. Popp, T. J. Vinther, B. M. Gkinis, V. Steen-Larsen, H. C. 2018-09-27 application/pdf https://doi.org/10.5194/cp-7-1327-2011 https://cp.copernicus.org/articles/7/1327/2011/ eng eng doi:10.5194/cp-7-1327-2011 https://cp.copernicus.org/articles/7/1327/2011/ eISSN: 1814-9332 Text 2018 ftcopernicus https://doi.org/10.5194/cp-7-1327-2011 2020-07-20T16:25:57Z A new ice core paleothermometer is introduced based on the temperature dependent diffusion of the stable water isotopes in the firn. A new parameter called differential diffusion length is defined as the difference between the diffusion length of the two stable water isotopologues 2 H 1 H 16 O and 1 H 2 18 O. A model treatment of the diffusion process of the firn and the ice is presented along with a method of retrieving the diffusion signal from the ice core record of water isotopes using spectral methods. The model shows how the diffusion process is highly dependent on the inter-annual variations in the surface temperatures. It results in a diffusion length longer than if the firn was isothermal. The longer diffusion length can be explained by the strong nonlinearly behaviour of the saturation pressure over ice in the range of the surface temperature fluctuations. The method has been tested on δ 18 O and δD measurements, spanning the transition from the last glacial to the holocene, from the NorthGRIP ice core. The surface temperature reconstruction based on the differential diffusion resembles other temperature reconstructions for the NorthGRIP ice core. However, the Allerød warming is seen to be significantly warmer than observed in other ice core based temperature reconstructions. The mechanisms behind this behaviour are not fully understood. The method shows the need of an expansion of high resolution stable water isotope datasets from ice cores. However, the new ice core paleothermometer presented here will give valuable insight into past climate, through the physical process of isotope diffusion in the firn column of ice sheets. Text ice core Copernicus Publications: E-Journals Climate of the Past 7 4 1327 1335
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description A new ice core paleothermometer is introduced based on the temperature dependent diffusion of the stable water isotopes in the firn. A new parameter called differential diffusion length is defined as the difference between the diffusion length of the two stable water isotopologues 2 H 1 H 16 O and 1 H 2 18 O. A model treatment of the diffusion process of the firn and the ice is presented along with a method of retrieving the diffusion signal from the ice core record of water isotopes using spectral methods. The model shows how the diffusion process is highly dependent on the inter-annual variations in the surface temperatures. It results in a diffusion length longer than if the firn was isothermal. The longer diffusion length can be explained by the strong nonlinearly behaviour of the saturation pressure over ice in the range of the surface temperature fluctuations. The method has been tested on δ 18 O and δD measurements, spanning the transition from the last glacial to the holocene, from the NorthGRIP ice core. The surface temperature reconstruction based on the differential diffusion resembles other temperature reconstructions for the NorthGRIP ice core. However, the Allerød warming is seen to be significantly warmer than observed in other ice core based temperature reconstructions. The mechanisms behind this behaviour are not fully understood. The method shows the need of an expansion of high resolution stable water isotope datasets from ice cores. However, the new ice core paleothermometer presented here will give valuable insight into past climate, through the physical process of isotope diffusion in the firn column of ice sheets.
format Text
author Simonsen, S. B.
Johnsen, S. J.
Popp, T. J.
Vinther, B. M.
Gkinis, V.
Steen-Larsen, H. C.
spellingShingle Simonsen, S. B.
Johnsen, S. J.
Popp, T. J.
Vinther, B. M.
Gkinis, V.
Steen-Larsen, H. C.
Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
author_facet Simonsen, S. B.
Johnsen, S. J.
Popp, T. J.
Vinther, B. M.
Gkinis, V.
Steen-Larsen, H. C.
author_sort Simonsen, S. B.
title Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
title_short Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
title_full Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
title_fullStr Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
title_full_unstemmed Past surface temperatures at the NorthGRIP drill site from the difference in firn diffusion of water isotopes
title_sort past surface temperatures at the northgrip drill site from the difference in firn diffusion of water isotopes
publishDate 2018
url https://doi.org/10.5194/cp-7-1327-2011
https://cp.copernicus.org/articles/7/1327/2011/
genre ice core
genre_facet ice core
op_source eISSN: 1814-9332
op_relation doi:10.5194/cp-7-1327-2011
https://cp.copernicus.org/articles/7/1327/2011/
op_doi https://doi.org/10.5194/cp-7-1327-2011
container_title Climate of the Past
container_volume 7
container_issue 4
container_start_page 1327
op_container_end_page 1335
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