A new synoptic-scale resolving global climate simulation using the Community Earth System Model

High-resolution global climate modeling holds the promise of capturing planetary-scale climate modes and small-scale (regional and sometimes extreme) features simultaneously, including their mutual interaction. This paper discusses a new state-of-the-art high-resolution Community Earth System Model (CESM) simulation that was performed with these goals in mind. The atmospheric component was at 0.25° grid spacing, and ocean component at 0.1°. One hundred years of "present day" simulation were completed. Major results were that annual mean sea surface temperature (SST) in the Equatorial Pacific, and El-Niño Southern Oscillation variability were well simulated compared to standard resolution models. Tropical and Southern Atlantic SST also had much reduced bias compared to previous versions of the model. In addition, the high resolution of the model enabled small-scale features of the climate system to be represented, such as air-sea interaction over ocean frontal zones, mesoscale systems generated by the Rockies, and tropical cyclones. Associated single component runs and standard resolution coupled runs are used to help attribute the strengths and weaknesses of the fully coupled run. The high-resolution run employed 23,404 cores, costing 250 thousand processor-hours per simulated year and made about 2 simulated years per day on the NCAR- Wyoming supercomputer 'Yellowstone'.

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Related Dataset #1 : Community Earth System Model (CESM) simulation from Accelerated Scientific Discovery phase of Yellowstone

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Copyright 2014 American Geophysical Union.


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Author Small, R.
Bacmeister, Julio
Bailey, David
Baker, Allison
Bishop, Stuart
Bryan, Frank
Caron, Julie
Dennis, John
Gent, Peter
Hsu, Hsiao-ming
Jochum, Markus
Lawrence, David
Munoz Acevedo, Ernesto
diNezio, Pedro
Scheitlin, Tim
Tomas, Robert
Tribbia, Joseph
Tseng, Yuheng
Vertenstein, Mariana
Publisher UCAR/NCAR - Library
Publication Date 2014-12-01T00:00:00
Digital Object Identifier (DOI) Not Assigned
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T18:44:31.447587
Metadata Record Identifier edu.ucar.opensky::articles:14403
Metadata Language eng; USA
Suggested Citation Small, R., Bacmeister, Julio, Bailey, David, Baker, Allison, Bishop, Stuart, Bryan, Frank, Caron, Julie, Dennis, John, Gent, Peter, Hsu, Hsiao-ming, Jochum, Markus, Lawrence, David, Munoz Acevedo, Ernesto, diNezio, Pedro, Scheitlin, Tim, Tomas, Robert, Tribbia, Joseph, Tseng, Yuheng, Vertenstein, Mariana. (2014). A new synoptic-scale resolving global climate simulation using the Community Earth System Model. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7222vsv. Accessed 29 June 2025.

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