涡度相关法
生物圈
环境科学
初级生产
碳循环
生物圈模型
大气科学
气候学
降水
焊剂(冶金)
生态系统
植被(病理学)
陆地生态系统
气候模式
气候变化
生态学
地理
气象学
生物
地质学
医学
材料科学
病理
冶金
作者
Christian Beer,Markus Reichstein,Enrico Tomelleri,Philippe Ciais,Martin Jung,Nuno Carvalhais,Christian Rödenbeck,M. Altaf Arain,Dennis Baldocchi,Gordon B. Bonan,Alberte Bondeau,Alessandro Cescatti,Gitta Lasslop,Anders Lindroth,Mark R. Lomas,Sebastiaan Luyssaert,Hank A. Margolis,Keith W. Oleson,Olivier Roupsard,Elmar Veenendaal
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2010-07-05
卷期号:329 (5993): 834-838
被引量:2846
标识
DOI:10.1126/science.1184984
摘要
Terrestrial gross primary production (GPP) is the largest global CO(2) flux driving several ecosystem functions. We provide an observation-based estimate of this flux at 123 +/- 8 petagrams of carbon per year (Pg C year(-1)) using eddy covariance flux data and various diagnostic models. Tropical forests and savannahs account for 60%. GPP over 40% of the vegetated land is associated with precipitation. State-of-the-art process-oriented biosphere models used for climate predictions exhibit a large between-model variation of GPP's latitudinal patterns and show higher spatial correlations between GPP and precipitation, suggesting the existence of missing processes or feedback mechanisms which attenuate the vegetation response to climate. Our estimates of spatially distributed GPP and its covariation with climate can help improve coupled climate-carbon cycle process models.
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