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  • PANGAEA  (235)
  • Cambridge University Press  (5)
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  • 1
    Publication Date: 2020-09-24
    Description: The concentration of radiocarbon (14C) differs between ocean and atmosphere. Radiocarbon determinations from samples which obtained their 14C in the marine environment therefore need a marine-specific calibration curve and cannot be calibrated directly against the atmospheric-based IntCal20 curve. This paper presents Marine20, an update to the internationally agreed marine radiocarbon age calibration curve that provides a non-polar global-average marine record of radiocarbon from 0–55 cal kBP and serves as a baseline for regional oceanic variation. Marine20 is intended for calibration of marine radiocarbon samples from non-polar regions; it is not suitable for calibration in polar regions where variability in sea ice extent, ocean upwelling and air-sea gas exchange may have caused larger changes to concentrations of marine radiocarbon. The Marine20 curve is based upon 500 simulations with an ocean/atmosphere/biosphere box-model of the global carbon cycle that has been forced by posterior realizations of our Northern Hemispheric atmospheric IntCal20 14C curve and reconstructed changes in CO2 obtained from ice core data. These forcings enable us to incorporate carbon cycle dynamics and temporal changes in the atmospheric 14C level. The box-model simulations of the global-average marine radiocarbon reservoir age are similar to those of a more complex three-dimensional ocean general circulation model. However, simplicity and speed of the box model allow us to use a Monte Carlo approach to rigorously propagate the uncertainty in both the historic concentration of atmospheric 14C and other key parameters of the carbon cycle through to our final Marine20 calibration curve. This robust propagation of uncertainty is fundamental to providing reliable precision for the radiocarbon age calibration of marine based samples. We make a first step towards deconvolving the contributions of different processes to the total uncertainty; discuss the main differences of Marine20 from the previous age calibration curve Marine13; and identify the limitations of our approach together with key areas for further work. The updated values for ΔR, the regional marine radiocarbon reservoir age corrections required to calibrate against Marine20, can be found at the data base http://calib.org/marine/.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
    Format: application/pdf
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  • 2
    Publication Date: 2022-05-26
    Description: © The Author(s), 2020. This article is distributed under the terms of the Creative Commons Attribution License. The definitive version was published in Heaton, T. J., Koehler, P., Butzin, M., Bard, E., Reimer, R. W., Austin, W. E. N., Ramsey, C. B., Grootes, P. M., Hughen, K. A., Kromer, B., Reimer, P. J., Adkins, J., Burke, A., Cook, M. S., Olsen, J., & Skinner, L. C. Marine20-the marine radiocarbon age calibration curve (0-55,000 cal BP). Radiocarbon, 62(4), (2020): 779-820, doi:10.1017/RDC.2020.68.
    Description: The concentration of radiocarbon (14C) differs between ocean and atmosphere. Radiocarbon determinations from samples which obtained their 14C in the marine environment therefore need a marine-specific calibration curve and cannot be calibrated directly against the atmospheric-based IntCal20 curve. This paper presents Marine20, an update to the internationally agreed marine radiocarbon age calibration curve that provides a non-polar global-average marine record of radiocarbon from 0–55 cal kBP and serves as a baseline for regional oceanic variation. Marine20 is intended for calibration of marine radiocarbon samples from non-polar regions; it is not suitable for calibration in polar regions where variability in sea ice extent, ocean upwelling and air-sea gas exchange may have caused larger changes to concentrations of marine radiocarbon. The Marine20 curve is based upon 500 simulations with an ocean/atmosphere/biosphere box-model of the global carbon cycle that has been forced by posterior realizations of our Northern Hemispheric atmospheric IntCal20 14C curve and reconstructed changes in CO2 obtained from ice core data. These forcings enable us to incorporate carbon cycle dynamics and temporal changes in the atmospheric 14C level. The box-model simulations of the global-average marine radiocarbon reservoir age are similar to those of a more complex three-dimensional ocean general circulation model. However, simplicity and speed of the box model allow us to use a Monte Carlo approach to rigorously propagate the uncertainty in both the historic concentration of atmospheric 14C and other key parameters of the carbon cycle through to our final Marine20 calibration curve. This robust propagation of uncertainty is fundamental to providing reliable precision for the radiocarbon age calibration of marine based samples. We make a first step towards deconvolving the contributions of different processes to the total uncertainty; discuss the main differences of Marine20 from the previous age calibration curve Marine13; and identify the limitations of our approach together with key areas for further work. The updated values for ΔR, the regional marine radiocarbon reservoir age corrections required to calibrate against Marine20, can be found at the data base http://calib.org/marine/.
    Description: We would like to thank Jeremy Oakley and Richard Bintanja for informative discussions during the development of this work. T.J. Heaton is supported by a Leverhulme Trust Fellowship RF-2019-140\9, “Improving the Measurement of Time Using Radiocarbon”. M Butzin is supported by the German Federal Ministry of Education and Research (BMBF), as Research for Sustainability initiative (FONA); www.fona.de through the PalMod project (grant numbers: 01LP1505B, 01LP1919A). E. Bard is supported by EQUIPEX ASTER-CEREGE and ANR CARBOTRYDH. Meetings of the IntCal Marine Focus group have been supported by Collège de France. Data are available on the PANGAEA database at doi:10.159/ANGAEA.914500.
    Keywords: Bayesian modeling ; calibration ; carbon cycle ; computer model ; marine environment
    Repository Name: Woods Hole Open Access Server
    Type: Article
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  • 3
    Publication Date: 2023-03-02
    Keywords: AGE; Calypso Square Core System; CASQS; DEPTH, sediment/rock; IMAGES XV - Pachiderme; Marion Dufresne (1995); MD07-3076; MD07-3076Q; MD159; Neogloboquadrina pachyderma sinistral; Sea surface temperature, summer
    Type: Dataset
    Format: text/tab-separated-values, 80 data points
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  • 4
    Publication Date: 2023-03-02
    Keywords: AGE; Calypso Square Core System; CASQS; DEPTH, sediment/rock; Globigerina bulloides, Magnesium/Calcium ratio; IMAGES XV - Pachiderme; Marion Dufresne (1995); MD07-3076; MD07-3076Q; MD159; Neogloboquadrina pachyderma sinistral, Magnesium/Calcium ratio
    Type: Dataset
    Format: text/tab-separated-values, 135 data points
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  • 5
    Publication Date: 2023-03-02
    Keywords: Age, dated; Age, dated standard error; CALYPSO2; Calypso Corer II; DEPTH, sediment/rock; IMAGES XV - Pachiderme; Marion Dufresne (1995); MD07-3077; MD159; Sedimentation rate
    Type: Dataset
    Format: text/tab-separated-values, 36 data points
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  • 6
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    PANGAEA
    Publication Date: 2023-03-02
    Keywords: Age, 14C AMS; Age, dated; Age, error; ALIENOR; Atlantic; Calypso Square Core System; CASQS; DEPTH, sediment/rock; Laboratory code/label; Marion Dufresne (1995); MD04-2829CQ; MD141; Northeast Atlantic; radiocarbon; Species
    Type: Dataset
    Format: text/tab-separated-values, 68 data points
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  • 7
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    PANGAEA
    In:  Supplement to: Skinner, Luke C; Fallon, Robert D; Waelbroeck, Claire; Michel, Elisabeth; Barker, S (2010): Ventilation of the Deep Southern Ocean and Deglacial CO2 Rise. Science, 328(5982), 1147-1151, https://doi.org/10.1126/science.1183627
    Publication Date: 2023-05-12
    Description: Past glacial-interglacial increases in the concentration of atmospheric carbon dioxide (CO2) are thought to arise from the rapid release of CO2 sequestered in the deep sea, primarily via the Southern Ocean. Here, we present radiocarbon evidence from the Atlantic sector of the Southern Ocean that strongly supports this hypothesis. We show that during the last glacial period, deep water circulating around Antarctica was more than two times older than today relative to the atmosphere. During deglaciation, the dissipation of this old and presumably CO2-enriched deep water played an important role in the pulsed rise of atmospheric CO2 through its variable influence on the upwelling branch of the Antarctic overturning circulation.
    Type: Dataset
    Format: application/zip, 3 datasets
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  • 8
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    PANGAEA
    In:  Supplement to: Vázquez Riveiros, Natalia; Waelbroeck, Claire; Skinner, Luke C; Roche, Didier M; Duplessy, Jean-Claude; Michel, Elisabeth (2010): Response of South Atlantic deep waters to deglacial warming during Terminations V and I. Earth and Planetary Science Letters, 298(3-4), 323-333, https://doi.org/10.1016/j.epsl.2010.08.003
    Publication Date: 2023-05-12
    Description: Sea surface temperature calculated from counts of the planktonic foraminifera N. pachyderma; planktonic and benthic foraminifera d18O and d13C for cores MD07-3076Q (covering the last deglaciation) and MD07-3077 (covering Termination V).
    Type: Dataset
    Format: application/zip, 9 datasets
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  • 9
    Publication Date: 2023-01-13
    Keywords: AGE; Cubic splines; Reservoir age
    Type: Dataset
    Format: text/tab-separated-values, 3000 data points
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  • 10
    Publication Date: 2023-01-13
    Keywords: AGE; Cubic splines; Reservoir age
    Type: Dataset
    Format: text/tab-separated-values, 3003 data points
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