Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation

Advances in trace gas analysis allow localised, non-atmospheric features to be resolved in ice cores, superimposed on the coherent atmospheric signal. These high-frequency signals could not have survived the low-pass filter effect that gas diffusion in the firn exerts on the atmospheric history and...

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Published in:Climate of the Past
Main Authors: Rhodes, Rachael H., Fain, Xavier, Brook, Edward J., McConnell, Joseph R., Maselli, Olivia J., Sigl, Michael, Edwards, Jon, Buizert, Christo, Blunier, Thomas, Chappellaz, Jerome, Freitag, Johannes
Format: Text
Language:unknown
Published: Gottingen, Copernicus GmbH 2022
Subjects:
Online Access:https://doi.org/10.5194/cp-12-1061-2016
https://infoscience.epfl.ch/record/298343/files/cp-12-1061-2016.pdf
http://infoscience.epfl.ch/record/298343
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spelling ftinfoscience:oai:infoscience.epfl.ch:298343 2023-05-15T16:28:28+02:00 Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation Rhodes, Rachael H. Fain, Xavier Brook, Edward J. McConnell, Joseph R. Maselli, Olivia J. Sigl, Michael Edwards, Jon Buizert, Christo Blunier, Thomas Chappellaz, Jerome Freitag, Johannes 2022-11-23T16:11:38Z https://doi.org/10.5194/cp-12-1061-2016 https://infoscience.epfl.ch/record/298343/files/cp-12-1061-2016.pdf http://infoscience.epfl.ch/record/298343 unknown Gottingen, Copernicus GmbH doi:10.5194/cp-12-1061-2016 isi:000376073100015 https://infoscience.epfl.ch/record/298343/files/cp-12-1061-2016.pdf http://infoscience.epfl.ch/record/298343 http://infoscience.epfl.ch/record/298343 Text 2022 ftinfoscience https://doi.org/10.5194/cp-12-1061-2016 2023-02-13T23:12:29Z Advances in trace gas analysis allow localised, non-atmospheric features to be resolved in ice cores, superimposed on the coherent atmospheric signal. These high-frequency signals could not have survived the low-pass filter effect that gas diffusion in the firn exerts on the atmospheric history and therefore do not result from changes in the atmospheric composition at the ice sheet surface. Using continuous methane (CH4) records obtained from five polar ice cores, we characterise these non-atmospheric signals and explore their origin. Isolated samples, enriched in CH4 in the Tunu13 (Greenland) record are linked to the presence of melt layers. Melting can enrich the methane concentration due to a solubility effect, but we find that an additional in situ process is required to generate the full magnitude of these anomalies. Furthermore, in all the ice cores studied there is evidence of reproducible, decimetre-scale CH4 variability. Through a series of tests, we demonstrate that this is an artifact of layered bubble trapping in a heterogeneous-density firn column; we use the term "trapping signal" for this phenomenon. The peak-to-peak amplitude of the trapping signal is typically 5 ppb, but may exceed 40 ppb. Signal magnitude increases with atmospheric CH4 growth rate and seasonal density contrast, and decreases with accumulation rate. Significant annual periodicity is present in the CH4 variability of two Greenland ice cores, suggesting that layered gas trapping at these sites is controlled by regular, seasonal variations in the physical properties of the firn. Future analytical campaigns should anticipate high-frequency artifacts at high-melt ice core sites or during time periods with high atmospheric CH4 growth rate in order to avoid misinterpretation of such features as past changes in atmospheric composition. © Author(s) 2016. Text Greenland Greenland ice cores ice core Ice Sheet EPFL Infoscience (Ecole Polytechnique Fédérale Lausanne) Greenland Climate of the Past 12 4 1061 1077
institution Open Polar
collection EPFL Infoscience (Ecole Polytechnique Fédérale Lausanne)
op_collection_id ftinfoscience
language unknown
description Advances in trace gas analysis allow localised, non-atmospheric features to be resolved in ice cores, superimposed on the coherent atmospheric signal. These high-frequency signals could not have survived the low-pass filter effect that gas diffusion in the firn exerts on the atmospheric history and therefore do not result from changes in the atmospheric composition at the ice sheet surface. Using continuous methane (CH4) records obtained from five polar ice cores, we characterise these non-atmospheric signals and explore their origin. Isolated samples, enriched in CH4 in the Tunu13 (Greenland) record are linked to the presence of melt layers. Melting can enrich the methane concentration due to a solubility effect, but we find that an additional in situ process is required to generate the full magnitude of these anomalies. Furthermore, in all the ice cores studied there is evidence of reproducible, decimetre-scale CH4 variability. Through a series of tests, we demonstrate that this is an artifact of layered bubble trapping in a heterogeneous-density firn column; we use the term "trapping signal" for this phenomenon. The peak-to-peak amplitude of the trapping signal is typically 5 ppb, but may exceed 40 ppb. Signal magnitude increases with atmospheric CH4 growth rate and seasonal density contrast, and decreases with accumulation rate. Significant annual periodicity is present in the CH4 variability of two Greenland ice cores, suggesting that layered gas trapping at these sites is controlled by regular, seasonal variations in the physical properties of the firn. Future analytical campaigns should anticipate high-frequency artifacts at high-melt ice core sites or during time periods with high atmospheric CH4 growth rate in order to avoid misinterpretation of such features as past changes in atmospheric composition. © Author(s) 2016.
format Text
author Rhodes, Rachael H.
Fain, Xavier
Brook, Edward J.
McConnell, Joseph R.
Maselli, Olivia J.
Sigl, Michael
Edwards, Jon
Buizert, Christo
Blunier, Thomas
Chappellaz, Jerome
Freitag, Johannes
spellingShingle Rhodes, Rachael H.
Fain, Xavier
Brook, Edward J.
McConnell, Joseph R.
Maselli, Olivia J.
Sigl, Michael
Edwards, Jon
Buizert, Christo
Blunier, Thomas
Chappellaz, Jerome
Freitag, Johannes
Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
author_facet Rhodes, Rachael H.
Fain, Xavier
Brook, Edward J.
McConnell, Joseph R.
Maselli, Olivia J.
Sigl, Michael
Edwards, Jon
Buizert, Christo
Blunier, Thomas
Chappellaz, Jerome
Freitag, Johannes
author_sort Rhodes, Rachael H.
title Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
title_short Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
title_full Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
title_fullStr Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
title_full_unstemmed Local artifacts in ice core methane records caused by layered bubble trapping and in situ production: A multi-site investigation
title_sort local artifacts in ice core methane records caused by layered bubble trapping and in situ production: a multi-site investigation
publisher Gottingen, Copernicus GmbH
publishDate 2022
url https://doi.org/10.5194/cp-12-1061-2016
https://infoscience.epfl.ch/record/298343/files/cp-12-1061-2016.pdf
http://infoscience.epfl.ch/record/298343
geographic Greenland
geographic_facet Greenland
genre Greenland
Greenland ice cores
ice core
Ice Sheet
genre_facet Greenland
Greenland ice cores
ice core
Ice Sheet
op_source http://infoscience.epfl.ch/record/298343
op_relation doi:10.5194/cp-12-1061-2016
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op_doi https://doi.org/10.5194/cp-12-1061-2016
container_title Climate of the Past
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container_issue 4
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