A multi-model assessment of last interglacial temperatures

The last interglaciation (-130 to 116 ka) is a time period with a strong astronomically induced seasonal forcing of insolation compared to the present. Proxy records indicate a significantly different climate to that of the modern, in particular Arctic summer warming and higher eustatic sea level. B...

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Published in:Climate of the Past
Main Authors: Lunt, D., Abe-Ouchi, A., Bakker, P., Berger, A., Braconnot, P., Charbit, S., Fischer, N., Herold, N., Jungclaus, J., Khon, V., Krebs-Kanzow, U., Langebroek, P., Lohmann, G., Nisancioglu, K., Otto-Bliesner, B., Park, W., Pfeiffer, M., Phipps, S., Prange, M., Rachmayani, R., Renssen, H., Rosenbloom, N., Schneider, B., Stone, E., Takahashi, K., Wei, W., Yin, Q., Zhang, Z.
Format: Article in Journal/Newspaper
Language:English
Published: 2013
Subjects:
Online Access:http://hdl.handle.net/11858/00-001M-0000-0014-3E8B-A
http://hdl.handle.net/11858/00-001M-0000-0014-3E8D-6
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spelling ftpubman:oai:pure.mpg.de:item_1833495 2023-08-27T04:08:02+02:00 A multi-model assessment of last interglacial temperatures Lunt, D. Abe-Ouchi, A. Bakker, P. Berger, A. Braconnot, P. Charbit, S. Fischer, N. Herold, N. Jungclaus, J. Khon, V. Krebs-Kanzow, U. Langebroek, P. Lohmann, G. Nisancioglu, K. Otto-Bliesner, B. Park, W. Pfeiffer, M. Phipps, S. Prange, M. Rachmayani, R. Renssen, H. Rosenbloom, N. Schneider, B. Stone, E. Takahashi, K. Wei, W. Yin, Q. Zhang, Z. 2013-08 application/pdf http://hdl.handle.net/11858/00-001M-0000-0014-3E8B-A http://hdl.handle.net/11858/00-001M-0000-0014-3E8D-6 eng eng info:eu-repo/semantics/altIdentifier/doi/10.5194/cp-9-699-2013 http://hdl.handle.net/11858/00-001M-0000-0014-3E8B-A http://hdl.handle.net/11858/00-001M-0000-0014-3E8D-6 info:eu-repo/semantics/openAccess Climate of the Past info:eu-repo/semantics/article 2013 ftpubman https://doi.org/10.5194/cp-9-699-2013 2023-08-02T01:20:26Z The last interglaciation (-130 to 116 ka) is a time period with a strong astronomically induced seasonal forcing of insolation compared to the present. Proxy records indicate a significantly different climate to that of the modern, in particular Arctic summer warming and higher eustatic sea level. Because the forcings are relatively well constrained, it provides an opportunity to test numerical models which are used for future climate prediction. In this paper we compile a set of climate model simulations of the early last interglaciation (130 to 125 ka), encompassing a range of model complexities. We compare the simulations to each other and to a recently published compilation of last interglacial temperature estimates.We show that the annual mean response of the models is rather small, with no clear signal in many regions. However, the seasonal response is more robust, and there is significant agreement amongst models as to the regions of warming vs cooling. However, the quantitative agreement of the model simulations with data is poor, with the models in general underestimating the magnitude of response seen in the proxies. Taking possible seasonal biases in the proxies into account improves the agreement, but only marginally. However, a lack of uncertainty estimates in the data does not allow us to draw firm conclusions. Instead, this paper points to several ways in which both modelling and data could be improved, to allow a more robust model-data comparison. © Author(s) 2013. Article in Journal/Newspaper Arctic Max Planck Society: MPG.PuRe Arctic Climate of the Past 9 2 699 717
institution Open Polar
collection Max Planck Society: MPG.PuRe
op_collection_id ftpubman
language English
description The last interglaciation (-130 to 116 ka) is a time period with a strong astronomically induced seasonal forcing of insolation compared to the present. Proxy records indicate a significantly different climate to that of the modern, in particular Arctic summer warming and higher eustatic sea level. Because the forcings are relatively well constrained, it provides an opportunity to test numerical models which are used for future climate prediction. In this paper we compile a set of climate model simulations of the early last interglaciation (130 to 125 ka), encompassing a range of model complexities. We compare the simulations to each other and to a recently published compilation of last interglacial temperature estimates.We show that the annual mean response of the models is rather small, with no clear signal in many regions. However, the seasonal response is more robust, and there is significant agreement amongst models as to the regions of warming vs cooling. However, the quantitative agreement of the model simulations with data is poor, with the models in general underestimating the magnitude of response seen in the proxies. Taking possible seasonal biases in the proxies into account improves the agreement, but only marginally. However, a lack of uncertainty estimates in the data does not allow us to draw firm conclusions. Instead, this paper points to several ways in which both modelling and data could be improved, to allow a more robust model-data comparison. © Author(s) 2013.
format Article in Journal/Newspaper
author Lunt, D.
Abe-Ouchi, A.
Bakker, P.
Berger, A.
Braconnot, P.
Charbit, S.
Fischer, N.
Herold, N.
Jungclaus, J.
Khon, V.
Krebs-Kanzow, U.
Langebroek, P.
Lohmann, G.
Nisancioglu, K.
Otto-Bliesner, B.
Park, W.
Pfeiffer, M.
Phipps, S.
Prange, M.
Rachmayani, R.
Renssen, H.
Rosenbloom, N.
Schneider, B.
Stone, E.
Takahashi, K.
Wei, W.
Yin, Q.
Zhang, Z.
spellingShingle Lunt, D.
Abe-Ouchi, A.
Bakker, P.
Berger, A.
Braconnot, P.
Charbit, S.
Fischer, N.
Herold, N.
Jungclaus, J.
Khon, V.
Krebs-Kanzow, U.
Langebroek, P.
Lohmann, G.
Nisancioglu, K.
Otto-Bliesner, B.
Park, W.
Pfeiffer, M.
Phipps, S.
Prange, M.
Rachmayani, R.
Renssen, H.
Rosenbloom, N.
Schneider, B.
Stone, E.
Takahashi, K.
Wei, W.
Yin, Q.
Zhang, Z.
A multi-model assessment of last interglacial temperatures
author_facet Lunt, D.
Abe-Ouchi, A.
Bakker, P.
Berger, A.
Braconnot, P.
Charbit, S.
Fischer, N.
Herold, N.
Jungclaus, J.
Khon, V.
Krebs-Kanzow, U.
Langebroek, P.
Lohmann, G.
Nisancioglu, K.
Otto-Bliesner, B.
Park, W.
Pfeiffer, M.
Phipps, S.
Prange, M.
Rachmayani, R.
Renssen, H.
Rosenbloom, N.
Schneider, B.
Stone, E.
Takahashi, K.
Wei, W.
Yin, Q.
Zhang, Z.
author_sort Lunt, D.
title A multi-model assessment of last interglacial temperatures
title_short A multi-model assessment of last interglacial temperatures
title_full A multi-model assessment of last interglacial temperatures
title_fullStr A multi-model assessment of last interglacial temperatures
title_full_unstemmed A multi-model assessment of last interglacial temperatures
title_sort multi-model assessment of last interglacial temperatures
publishDate 2013
url http://hdl.handle.net/11858/00-001M-0000-0014-3E8B-A
http://hdl.handle.net/11858/00-001M-0000-0014-3E8D-6
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op_source Climate of the Past
op_relation info:eu-repo/semantics/altIdentifier/doi/10.5194/cp-9-699-2013
http://hdl.handle.net/11858/00-001M-0000-0014-3E8B-A
http://hdl.handle.net/11858/00-001M-0000-0014-3E8D-6
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op_doi https://doi.org/10.5194/cp-9-699-2013
container_title Climate of the Past
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