Land surface coupling in regional climate simulations of the West African monsoon

被引:0
|
作者
Allison L. Steiner
Jeremy S. Pal
Sara A. Rauscher
Jason L. Bell
Noah S. Diffenbaugh
Aaron Boone
Lisa C. Sloan
Filippo Giorgi
机构
[1] University of Michigan,Department of Atmospheric, Oceanic and Space Sciences
[2] Loyola Marymount University,Department of Civil Engineering and Environmental Science
[3] Abdus Salam International Centre for Theoretical Physics,Earth System Physics – Weather and Climate Group
[4] University of California,Department of Earth and Planetary Sciences
[5] Purdue University,Purdue Climate Change Research Center and Department of Earth and Atmospheric Sciences
[6] CNRS/GAME,undefined
[7] CNRM Météo-France,undefined
来源
Climate Dynamics | 2009年 / 33卷
关键词
African monsoon; Land surface modeling; Soil moisture; Land surface–atmosphere coupling; RegCM3; Regional climate modeling;
D O I
暂无
中图分类号
学科分类号
摘要
Coupling of the Community Land Model (CLM3) to the ICTP Regional Climate Model (RegCM3) substantially improves the simulation of mean climate over West Africa relative to an older version of RegCM3 coupled to the Biosphere Atmosphere Transfer Scheme (BATS). Two 10-year simulations (1992–2001) show that the seasonal timing and magnitude of mean monsoon precipitation more closely match observations when the new land surface scheme is implemented. Specifically, RegCM3–CLM3 improves the timing of the monsoon advance and retreat across the Guinean Coast, and reduces a positive precipitation bias in the Sahel and Northern Africa. As a result, simulated temperatures are higher, thereby reducing the negative temperature bias found in the Guinean Coast and Sahel in RegCM3–BATS. In the RegCM3–BATS simulation, warmer temperatures in northern latitudes and wetter soils near the coast create excessively strong temperature and moist static energy gradients, which shifts the African Easterly Jet further north than observed. In the RegCM3–CLM3 simulation, the migration and position of the African Easterly Jet more closely match reanalysis winds. This improvement is triggered by drier soil conditions in the RegCM3–CLM3 simulation and an increase in evapotranspiration per unit precipitation. These results indicate that atmosphere–land surface coupling has the ability to impact regional-scale circulation and precipitation in regions exhibiting strong hydroclimatic gradients.
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页码:869 / 892
页数:23
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