Temperature variability and soil–atmosphere interaction in South America simulated by two regional climate models

被引:0
作者
Claudio G. Menéndez
Julián Giles
Romina Ruscica
Pablo Zaninelli
Tanea Coronato
Magdalena Falco
Anna Sörensson
Lluís Fita
Andrea Carril
Laurent Li
机构
[1] Universidad de Buenos Aires,Facultad de Ciencias Exactas y Naturales
[2] Centro de Investigaciones del Mar y la Atmósfera (CIMA/CONICET-UBA),Facultad de Ciencias Astronómicas y Geofísicas
[3] Instituto Franco-Argentino sobre Estudios de Clima y sus Impactos (UMI3351-IFAECI/CNRS-CONICET-UBA),Laboratoire de Météorologie Dynamique
[4] Universidad Nacional de La Plata,undefined
[5] CNRS,undefined
来源
Climate Dynamics | 2019年 / 53卷
关键词
Interannual climate variability; Surface air temperature; Regional climate modeling; South America; Land–atmosphere interaction;
D O I
暂无
中图分类号
学科分类号
摘要
Interannual variability of surface air temperature over South America is investigated and, based on previous studies, thought to be partly the consequence of soil–atmosphere interaction. Annual and monthly averages of surface air temperature, evapotranspiration, heat fluxes, surface radiation and cloud cover, simulated by two regional climate models, RCA4 and LMDZ, were analyzed. To fully reveal the role of soil as a driver of temperature variability, simulations were performed with and without soil moisture-atmosphere coupling (Control and Uncoupled). Zones of large variance in air temperature and strong soil moisture-atmosphere coupling are found in parts of La Plata Basin and in eastern Brazil. The two models show different behaviors in terms of coupling magnitude and its geographical distribution, being the coupling strength higher in RCA4 and weaker in LMDZ. RCA4 also shows greater amplitude of the annual cycle of the monthly surface air temperature compared to LMDZ. In both regions and for both models, the Uncoupled experiment tends to be colder and exhibits smaller amplitude of the interannual variability and larger evaporative fraction than the Control does. It is evidenced that variability of the land surface affects, and is affected by, variability of the surface energy balance and that interannual temperature variability is partly driven by land–atmosphere interaction.
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页码:2919 / 2930
页数:11
相关论文
共 255 条
[31]  
Chen W(2007)The JRA-25 reanalysis J Meteorol Soc Jpn 16 267-447
[32]  
Jiang Z(2006)Annual and inter-annual variability of present climate in northern South America and southern Mesoamerica Paleogeogr Palaeoclimato lPalaeoecol 17 141-209
[33]  
Li L(1998)A comparison of the CCM3 Model climate using diagnosed and predicted condensate parameterizations J Clim 63A 4-161
[34]  
Yiou P(2015)Pathways between soil moisture and precipitation in southeastern South America Atmos Sci Lett 29 437-68
[35]  
da Rocha RP(2016)Land surface-atmosphere interaction in future South American climate using a multi-model ensemble Atmos Sci Lett 443 205-4166
[36]  
Cuadra SV(2011)The rossby centre regional climate model RCA3: model description and performance Tellus 99 125-103
[37]  
Reboita MS(1990)A fast radiation scheme for mesoscale model and short-range forecast models J Appl Met 63A 56-24
[38]  
Kruger LF(2006)Land-atmosphere coupling and climate change in Europe Nature 35 4151-299
[39]  
Ambrizzi T(2010)Investigating soil moisture–climate interactions in a changing climate:a review Earth-Sci Rev 64 96-13,885
[40]  
Krusche N(2011)Summer soil-precipitation coupling in South America Tellus 64 1-6408