Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements

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Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements. / Doring, Michael; Leuenberger, Markus Christian.

In: Quaternary Science Reviews, Vol. 280, 107274, 15.03.2022.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Doring, M & Leuenberger, MC 2022, 'Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements', Quaternary Science Reviews, vol. 280, 107274. https://doi.org/10.1016/j.quascirev.2021.107274

APA

Doring, M., & Leuenberger, M. C. (2022). Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements. Quaternary Science Reviews, 280, [107274]. https://doi.org/10.1016/j.quascirev.2021.107274

Vancouver

Doring M, Leuenberger MC. Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements. Quaternary Science Reviews. 2022 Mar 15;280. 107274. https://doi.org/10.1016/j.quascirev.2021.107274

Author

Doring, Michael ; Leuenberger, Markus Christian. / Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements. In: Quaternary Science Reviews. 2022 ; Vol. 280.

Bibtex

@article{30c6626ab9434914b3c2f2fe733a2fc9,
title = "Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements",
abstract = "Nitrogen and argon stable isotope data obtained from ancient air in ice cores provide the opportunity to reconstruct past temperatures in Greenland. In this study, we use a recently developed fitting-algorithm based on a Monte Carlo inversion technique coupled with two firn densification and heat diffusion models to fit several Holocene gas-isotope data measured at the GISP2 ice core and infer temperature variations.We present for the first time the resulting temperature estimates when fitting delta N-15, delta Ar-40, and delta N-15(excess) as individual targets. While the comparison between the reconstructions using delta N-15 and delta Ar-40 shows high agreement, the use of delta N-15(excess) for temperature reconstruction is problematic because the statistical and systematic data uncertainty is higher and has a particular impact on multi-decadal to multi-centennial signals.Our analyses demonstrate that T(delta N-15) provides the most robust estimate. The T(delta N-15) estimate is in better agreement with Buizert et al. (2018) than with the temperature reconstruction of Kobashi et al. (2017). However, all three reconstruction strategies lead to different temperature realizations. (C) 2022 The Authors. Published by Elsevier Ltd.",
keywords = "Temperature reconstruction, Ice core, Nitrogen isotope, Argon isotope, Inverse-model, Firn-model, Accumulation-rate, ICE-CORE, TRAPPED AIR, OXYGEN-ISOTOPE, GREENLAND, CLIMATE, GRIP, NITROGEN, RECORDS, EVENT, NGRIP",
author = "Michael Doring and Leuenberger, {Markus Christian}",
year = "2022",
month = mar,
day = "15",
doi = "10.1016/j.quascirev.2021.107274",
language = "English",
volume = "280",
journal = "Quaternary Science Reviews",
issn = "0277-3791",
publisher = "Pergamon Press",

}

RIS

TY - JOUR

T1 - Comparison of Holocene temperature reconstructions based on GISP2 multiple-gas-isotope measurements

AU - Doring, Michael

AU - Leuenberger, Markus Christian

PY - 2022/3/15

Y1 - 2022/3/15

N2 - Nitrogen and argon stable isotope data obtained from ancient air in ice cores provide the opportunity to reconstruct past temperatures in Greenland. In this study, we use a recently developed fitting-algorithm based on a Monte Carlo inversion technique coupled with two firn densification and heat diffusion models to fit several Holocene gas-isotope data measured at the GISP2 ice core and infer temperature variations.We present for the first time the resulting temperature estimates when fitting delta N-15, delta Ar-40, and delta N-15(excess) as individual targets. While the comparison between the reconstructions using delta N-15 and delta Ar-40 shows high agreement, the use of delta N-15(excess) for temperature reconstruction is problematic because the statistical and systematic data uncertainty is higher and has a particular impact on multi-decadal to multi-centennial signals.Our analyses demonstrate that T(delta N-15) provides the most robust estimate. The T(delta N-15) estimate is in better agreement with Buizert et al. (2018) than with the temperature reconstruction of Kobashi et al. (2017). However, all three reconstruction strategies lead to different temperature realizations. (C) 2022 The Authors. Published by Elsevier Ltd.

AB - Nitrogen and argon stable isotope data obtained from ancient air in ice cores provide the opportunity to reconstruct past temperatures in Greenland. In this study, we use a recently developed fitting-algorithm based on a Monte Carlo inversion technique coupled with two firn densification and heat diffusion models to fit several Holocene gas-isotope data measured at the GISP2 ice core and infer temperature variations.We present for the first time the resulting temperature estimates when fitting delta N-15, delta Ar-40, and delta N-15(excess) as individual targets. While the comparison between the reconstructions using delta N-15 and delta Ar-40 shows high agreement, the use of delta N-15(excess) for temperature reconstruction is problematic because the statistical and systematic data uncertainty is higher and has a particular impact on multi-decadal to multi-centennial signals.Our analyses demonstrate that T(delta N-15) provides the most robust estimate. The T(delta N-15) estimate is in better agreement with Buizert et al. (2018) than with the temperature reconstruction of Kobashi et al. (2017). However, all three reconstruction strategies lead to different temperature realizations. (C) 2022 The Authors. Published by Elsevier Ltd.

KW - Temperature reconstruction

KW - Ice core

KW - Nitrogen isotope

KW - Argon isotope

KW - Inverse-model

KW - Firn-model

KW - Accumulation-rate

KW - ICE-CORE

KW - TRAPPED AIR

KW - OXYGEN-ISOTOPE

KW - GREENLAND

KW - CLIMATE

KW - GRIP

KW - NITROGEN

KW - RECORDS

KW - EVENT

KW - NGRIP

U2 - 10.1016/j.quascirev.2021.107274

DO - 10.1016/j.quascirev.2021.107274

M3 - Journal article

VL - 280

JO - Quaternary Science Reviews

JF - Quaternary Science Reviews

SN - 0277-3791

M1 - 107274

ER -

ID: 302383476