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The Dynamical Simulation of the NCAR Community Climate Model Version 3 (CCM3).

Authors :
Hurrell, James W.
Hack, James J.
Boville, Byron A.
Williamson, David L.
Kiehl, Jeffrey T.
Source :
Journal of Climate; 6/1/98, Vol. 11 Issue 6, p1207, 30p, 9 Graphs, 72 Maps
Publication Year :
1998

Abstract

The dynamical simulation of the standard configuration of the latest version of the National Center for Atmospheric Research (NCAR) Community Climate Model (CCM3) is examined, including the seasonal variation of its mean state and its intraseasonal and interannual variability. A 15-yr integration in which the model is forced with observed monthly varying sea surface temperatures (SSTs) since 1979 is compared to coexisting observations. Results show that the most serious systematic errors in previous NCAR CCM versions have either been eliminated or substantially reduced. At sea level, CCM3 reproduces the basic observed patterns of the pressure field very well. Simulated surface pressures are higher than observed over the subtropics, however, an error consistent with an easterly bias in the simulated trade winds and low-latitude surface wind stress. Amplitude errors and phase shifts of the subpolar low pressure centers over both hemispheres during winter produce the largest regional errors, which are on the order of 5 mb. In the upper troposphere, both the amplitude and location of the major circulation centers are very well captured by the model, in agreement with relatively small regional biases in the simulated winds. Errors in the zonal wind component at 200 mb are most notable between 408 and 50&deg lat of both hemispheres, where the modeled westerlies are stronger than observed especially over the Southern Hemisphere during winter. A -50% reduction in the magnitude of the zonally averaged westerly bias in the equatorial upper troposphere that plagued previous CCM versions can be attributed to a significantly improved tropical hydrologic cycle and reduced Walker circulation. Over middle latitudes, the CCM3 realistically depicts the main storm tracks, although the transient kinetic energy is generally underestimated, especially over the summer hemispheres. Over lower latitudes, the model simulates tropical intraseasonal oscillations with marked sea (...). [ABSTRACT FROM AUTHOR]

Subjects

Subjects :
CLIMATOLOGY
MATHEMATICAL models

Details

Language :
English
ISSN :
08948755
Volume :
11
Issue :
6
Database :
Complementary Index
Journal :
Journal of Climate
Publication Type :
Academic Journal
Accession number :
5579555
Full Text :
https://doi.org/10.1175/1520-0442(1998)011<1207:TDSOTN>2.0.CO;2