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Fischer, Nils; Jungclaus, Johann H (2012): Holocene experiment with coupled atmosphere-ocean-model ECHAM5/MPI-OM [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.773607, Supplement to: Fischer, N; Jungclaus, JH (2011): Evolution of the seasonal temperature cycle in a transient Holocene simulation: orbital forcing and sea-ice. Climate of the Past, 7, 1139-1148, https://doi.org/10.5194/cp-7-1139-2011

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Abstract:
Changes in the Earth's orbit lead to changes in the seasonal and meridional distribution of insolation. We quantify the influence of orbitally induced changes on the seasonal temperature cycle in a transient simulation of the last 6000 years – from the mid-Holocene to today – using a coupled atmosphere-ocean general circulation model (ECHAM5/MPI-OM) including a land surface model (JSBACH).
The seasonal temperature cycle responds directly to the insolation changes almost everywhere. In the Northern Hemisphere, its amplitude decreases according to an increase in winter insolation and a decrease in summer insolation. In the Southern Hemisphere, the opposite is true.
Over the Arctic Ocean, decreasing summer insolation leads to an increase in sea-ice cover. The insulating effect of sea ice between the ocean and the atmosphere leads to decreasing heat flux and favors more "continental" conditions over the Arctic Ocean in winter, resulting in strongly decreasing temperatures. Consequently, there are two competing effects: the direct response to insolation changes and a sea-ice insulation effect. The sea-ice insulation effect is stronger, and thus an increase in the amplitude of the seasonal temperature cycle over the Arctic Ocean occurs. This increase is strongest over the Barents Shelf and influences the temperature response over northern Europe.
We compare our modeled seasonal temperatures over Europe to paleo reconstructions. We find better agreements in winter temperatures than in summer temperatures and better agreements in northern Europe than in southern Europe, since the model does not reproduce the southern European Holocene summer cooling inferred from the paleo reconstructions. The temperature reconstructions for northern Europe support the notion of the influence of the sea-ice insulation effect on the evolution of the seasonal temperature cycle.
Funding:
German Research Foundation (DFG), grant/award no. 25575884: Integrierte Analyse zwischeneiszeitlicher Klimadynamik
Comment:
The data consist of snap-shots taken every 50-years over the simulation period of 6.000 years.
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
File nameFile name
AbbreviationAbbrev
ParameterParameter
UnitUnit
Uniform resource locator/link to model result fileURL modelFischer, Nils
File sizeFile sizekByte
File formatFile format
Size:
77 data points

Data

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File name

Abbrev

Parameter

Unit

URL model

File size [kByte]

File format
pr_echam5_transient_50rm.ncevspsblevaporationkg/m^2shttp://hdl.handle.net/10013/epic.38579.d0012145NetCDF
evapsbl_echam5_transient_50rm.ncprlarge scale precipitationkg/m^2shttp://hdl.handle.net/10013/epic.38579.d0022145NetCDF
psl_echam5_transient_50rm.ncpslmean sea level pressurePahttp://hdl.handle.net/10013/epic.38579.d0032145NetCDF
sic_mpiom_transient_50rm.ncsicsea ice coverfrac.http://hdl.handle.net/10013/epic.38579.d00429000NetCDF
sit_mpiom_transient_50rm.ncsitsea-ice thicknessmhttp://hdl.handle.net/10013/epic.38579.d00529000NetCDF
sss_mpiom_transient_50rm.ncssssea surface salinitypsuhttp://hdl.handle.net/10013/epic.38579.d00629000NetCDF
sst_mpiom_transient_50rm.ncsstsea surface temperatureChttp://hdl.handle.net/10013/epic.38579.d00729000NetCDF
tas_echam5_transient_50rm.nctas2m temperatureKhttp://hdl.handle.net/10013/epic.38579.d0082145NetCDF
thetao_mpiom_transient_50rm.ncthetaotemperature (surface, 100m, 485m, 960m, 2080m, 3070m, 5170m)°Chttp://hdl.handle.net/10013/epic.38579.d009205000NetCDF
uas_echam5_transient_50rm.ncuas10m u-velocitym/shttp://hdl.handle.net/10013/epic.38579.d0102145NetCDF
vas_echam5_transient_50rm.ncvas10m v-velocitym/shttp://hdl.handle.net/10013/epic.38579.d0112145NetCDF