生物群落
蒸散量
环境科学
涡度相关法
蒸腾作用
生态系统
生态水文学
含水量
土壤质地
大气科学
降水
蒸汽压差
土壤科学
植被(病理学)
土壤水分
生长季节
水文学(农业)
生态学
光合作用
生物
地理
地质学
植物
病理
气象学
医学
岩土工程
作者
Zheng Fu,Philippe Ciais,Andrew F. Feldman,Pierre Gentine,David Makowski,I. Colin Prentice,Paul C. Stoy,Ana Bastos,Jean‐Pierre Wigneron
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2022-11-04
卷期号:8 (44): eabq7827-eabq7827
被引量:166
标识
DOI:10.1126/sciadv.abq7827
摘要
Plant water stress occurs at the point when soil moisture (SM) limits transpiration, defining a critical SM threshold (θcrit). Knowledge of the spatial distribution of θcrit is crucial for future projections of climate and water resources. Here, we use global eddy covariance observations to quantify θcrit and evaporative fraction (EF) regimes. Three canonical variables describe how EF is controlled by SM: the maximum EF (EFmax), θcrit, and slope (S) between EF and SM. We find systematic differences of these three variables across biomes. Variation in θcrit, S, and EFmax is mostly explained by soil texture, vapor pressure deficit, and precipitation, respectively, as well as vegetation structure. Dryland ecosystems tend to operate at low θcrit and show adaptation to water deficits. The negative relationship between θcrit and S indicates that dryland ecosystems minimize θcrit through mechanisms of sustained SM extraction and transport by xylem. Our results further suggest an optimal adaptation of local EF-SM response that maximizes growing-season evapotranspiration and photosynthesis.
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