The Pliocene Model Intercomparison Project Phase 2: large-scale climate features and climate sensitivity
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Published:2020-11-04
Issue:6
Volume:16
Page:2095-2123
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ISSN:1814-9332
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Container-title:Climate of the Past
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language:en
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Short-container-title:Clim. Past
Author:
Haywood Alan M., Tindall Julia C.ORCID, Dowsett Harry J., Dolan Aisling M.ORCID, Foley Kevin M., Hunter Stephen J.ORCID, Hill Daniel J.ORCID, Chan Wing-LeORCID, Abe-Ouchi AyakoORCID, Stepanek ChristianORCID, Lohmann GerritORCID, Chandan DeepakORCID, Peltier W. RichardORCID, Tan Ning, Contoux CamilleORCID, Ramstein Gilles, Li XiangyuORCID, Zhang Zhongshi, Guo ChunchengORCID, Nisancioglu Kerim H.ORCID, Zhang QiongORCID, Li QiangORCID, Kamae YouichiORCID, Chandler Mark A.ORCID, Sohl Linda E.ORCID, Otto-Bliesner Bette L.ORCID, Feng Ran, Brady Esther C.ORCID, von der Heydt Anna S.ORCID, Baatsen Michiel L. J., Lunt Daniel J.ORCID
Abstract
Abstract. The Pliocene epoch has great potential to improve our
understanding of the long-term climatic and environmental consequences of an atmospheric CO2 concentration near ∼400 parts per
million by volume. Here we present the large-scale features of Pliocene
climate as simulated by a new ensemble of climate models of varying
complexity and spatial resolution based on new reconstructions of
boundary conditions (the Pliocene Model Intercomparison Project Phase 2;
PlioMIP2). As a global annual average, modelled surface air temperatures
increase by between 1.7 and 5.2 ∘C relative to the pre-industrial era
with a multi-model mean value of 3.2 ∘C. Annual mean total
precipitation rates increase by 7 % (range: 2 %–13 %). On average, surface air temperature (SAT) increases by 4.3 ∘C over land and 2.8 ∘C over the oceans. There is a clear pattern of polar amplification with warming polewards of 60∘ N and 60∘ S exceeding the global mean warming by a factor of 2.3. In the Atlantic and Pacific oceans, meridional temperature gradients are reduced, while tropical zonal gradients remain largely unchanged. There is a statistically significant relationship between a model's climate response associated with a doubling in CO2 (equilibrium climate sensitivity; ECS) and its simulated Pliocene surface temperature response. The mean ensemble Earth system response to a doubling of CO2 (including ice sheet feedbacks) is 67 % greater than ECS; this is larger than the increase of 47 % obtained from the PlioMIP1 ensemble. Proxy-derived estimates of Pliocene sea surface temperatures are used to assess model estimates of ECS and give an ECS range of 2.6–4.8 ∘C. This result is in general accord with the ECS range presented by previous Intergovernmental Panel on Climate Change (IPCC) Assessment Reports.
Publisher
Copernicus GmbH
Subject
Paleontology,Stratigraphy,Global and Planetary Change
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