Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity

An Earth system model of intermediate complexity, MoBidiC, has been used to simulate the transient variations in continental temperature, sea-surface temperature (SST), thermohaline circulation (THC) and sea-ice cover over the last 9000 years (9 kyr). Experiments were designed to determine (a) the d...

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Published in:Climate Dynamics
Main Authors: Crucifix, Michel, Loutre, Marie-France, Tulkens, Paul M., Fichefet, Thierry, Berger, André
Other Authors: UCL - SC/PHYS - Département de physique, UCL - MD/FARM - Ecole de pharmacie, UCL - SST/ELI/ELIC - Earth & Climate
Format: Article in Journal/Newspaper
Language:English
Published: Springer-verlag 2002
Subjects:
Online Access:http://hdl.handle.net/2078.1/41914
https://doi.org/10.1007/s00382-001-0208-6
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spelling ftunivlouvain:oai:dial.uclouvain.be:boreal:41914 2024-05-12T08:10:56+00:00 Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity Crucifix, Michel Loutre, Marie-France Tulkens, Paul M. Fichefet, Thierry Berger, André UCL - SC/PHYS - Département de physique UCL - MD/FARM - Ecole de pharmacie UCL - SST/ELI/ELIC - Earth & Climate 2002 http://hdl.handle.net/2078.1/41914 https://doi.org/10.1007/s00382-001-0208-6 eng eng Springer-verlag boreal:41914 http://hdl.handle.net/2078.1/41914 doi:10.1007/s00382-001-0208-6 urn:ISSN:0930-7575 urn:EISSN:1432-0894 info:eu-repo/semantics/restrictedAccess Climate Dynamics : observational, theoretical and computational research on the climate system, Vol. 19, no. 1, p. 43-60 (2002) info:eu-repo/semantics/article 2002 ftunivlouvain https://doi.org/10.1007/s00382-001-0208-6 2024-04-17T17:32:17Z An Earth system model of intermediate complexity, MoBidiC, has been used to simulate the transient variations in continental temperature, sea-surface temperature (SST), thermohaline circulation (THC) and sea-ice cover over the last 9000 years (9 kyr). Experiments were designed to determine (a) the deviation of the climatic system with respect to equilibrium over the last 9 kyr, (b) the individual contributions of oceans and vegetation to climatic changes, as well as the potential synergies between these components, and (c) the relative importance of precession, obliquity and CO2 concentration changes during this period. Results show a monotonous cooling trend in the northern high latitudes between 9 kyr BP and the present day, both over the oceans and the continents. North of 60degreesN, this cooling is noticed throughout the year, but the largest variations appear in spring and summer (up to 6 degreesC over continents). Along with this cooling, the model exhibits a southward shift of the northern treeline b about 600 km. Most of this shift takes place between 4 and I kyr BP. During this period, reorganisations of the boreal forest introduce a lag of about 200 years in the system with respect to a state in equilibrium with the external forcing. Sensitivity experiments illustrate the strong impact of this vegetation shift both on the oceans and the continents, especially in spring and early summer. However. the model exhibits a weak synergy between vegetation and ocean throughout the Holocene. Finally, a sensitivity study to the forcing components shows the dominant role of the astronomical forcing with respect to CO2, as well as the non-linear behaviour of climate in response to obliquity and precession. Article in Journal/Newspaper Sea ice DIAL@UCLouvain (Université catholique de Louvain) Climate Dynamics 19 1 43 60
institution Open Polar
collection DIAL@UCLouvain (Université catholique de Louvain)
op_collection_id ftunivlouvain
language English
description An Earth system model of intermediate complexity, MoBidiC, has been used to simulate the transient variations in continental temperature, sea-surface temperature (SST), thermohaline circulation (THC) and sea-ice cover over the last 9000 years (9 kyr). Experiments were designed to determine (a) the deviation of the climatic system with respect to equilibrium over the last 9 kyr, (b) the individual contributions of oceans and vegetation to climatic changes, as well as the potential synergies between these components, and (c) the relative importance of precession, obliquity and CO2 concentration changes during this period. Results show a monotonous cooling trend in the northern high latitudes between 9 kyr BP and the present day, both over the oceans and the continents. North of 60degreesN, this cooling is noticed throughout the year, but the largest variations appear in spring and summer (up to 6 degreesC over continents). Along with this cooling, the model exhibits a southward shift of the northern treeline b about 600 km. Most of this shift takes place between 4 and I kyr BP. During this period, reorganisations of the boreal forest introduce a lag of about 200 years in the system with respect to a state in equilibrium with the external forcing. Sensitivity experiments illustrate the strong impact of this vegetation shift both on the oceans and the continents, especially in spring and early summer. However. the model exhibits a weak synergy between vegetation and ocean throughout the Holocene. Finally, a sensitivity study to the forcing components shows the dominant role of the astronomical forcing with respect to CO2, as well as the non-linear behaviour of climate in response to obliquity and precession.
author2 UCL - SC/PHYS - Département de physique
UCL - MD/FARM - Ecole de pharmacie
UCL - SST/ELI/ELIC - Earth & Climate
format Article in Journal/Newspaper
author Crucifix, Michel
Loutre, Marie-France
Tulkens, Paul M.
Fichefet, Thierry
Berger, André
spellingShingle Crucifix, Michel
Loutre, Marie-France
Tulkens, Paul M.
Fichefet, Thierry
Berger, André
Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
author_facet Crucifix, Michel
Loutre, Marie-France
Tulkens, Paul M.
Fichefet, Thierry
Berger, André
author_sort Crucifix, Michel
title Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
title_short Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
title_full Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
title_fullStr Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
title_full_unstemmed Climate evolution during the Holocene: a study with an Earth system model of intermediate complexity
title_sort climate evolution during the holocene: a study with an earth system model of intermediate complexity
publisher Springer-verlag
publishDate 2002
url http://hdl.handle.net/2078.1/41914
https://doi.org/10.1007/s00382-001-0208-6
genre Sea ice
genre_facet Sea ice
op_source Climate Dynamics : observational, theoretical and computational research on the climate system, Vol. 19, no. 1, p. 43-60 (2002)
op_relation boreal:41914
http://hdl.handle.net/2078.1/41914
doi:10.1007/s00382-001-0208-6
urn:ISSN:0930-7575
urn:EISSN:1432-0894
op_rights info:eu-repo/semantics/restrictedAccess
op_doi https://doi.org/10.1007/s00382-001-0208-6
container_title Climate Dynamics
container_volume 19
container_issue 1
container_start_page 43
op_container_end_page 60
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