The impact of new land surface physics on the GCM simulation of climate and climate sensitivity

被引:1
作者
P. M. Cox
R. A. Betts
C. B. Bunton
R. L. H. Essery
P. R. Rowntree
J. Smith
机构
[1] Hadley Centre,
[2] Meteorological Office,undefined
[3] Bracknell,undefined
[4] Berks RG12 2SY,undefined
[5] UK,undefined
来源
Climate Dynamics | 1999年 / 15卷
关键词
Soil Water; Climate Sensitivity; Soil Water Availability; Land Surface Scheme; Canopy Conductance;
D O I
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中图分类号
学科分类号
摘要
 Recent improvements to the Hadley Centre climate model include the introduction of a new land surface scheme called “MOSES” (Met Office Surface Exchange Scheme). MOSES is built on the previous scheme, but incorporates in addition an interactive plant photosynthesis and conductance module, and a new soil thermodynamics scheme which simulates the freezing and melting of soil water, and takes account of the dependence of soil thermal characteristics on the frozen and unfrozen components. The impact of these new features is demonstrated by comparing 1×CO2 and 2×CO2 climate simulations carried out using the old (UKMO) and new (MOSES) land surface schemes. MOSES is found to improve the simulation of current climate. Soil water freezing tends to warm the high-latitude land in the northern Hemisphere during autumn and winter, whilst the increased soil water availability in MOSES alleviates a spurious summer drying in the mid-latitudes. The interactive canopy conductance responds directly to CO2, supressing transpiration as the concentration increases and producing a significant enhancement of the warming due to the radiative effects of CO2 alone.
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页码:183 / 203
页数:20
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