环境科学
蒸散量
生态系统
干旱
土壤质地
引爆点(物理)
干旱指数
降水
含水量
气候变化
灌溉
大气科学
水文学(农业)
土壤水分
自然地理学
土壤科学
农学
生态学
气象学
地理
地质学
岩土工程
生物
电气工程
工程类
作者
Zheng Fu,Philippe Ciais,Jean‐Pierre Wigneron,Pierre Gentine,Andrew F. Feldman,David Makowski,Nicolas Viovy,Armen R. Kemanian,Daniel Goll,Paul C. Stoy,Iain Colin Prentice,Dan Yakir,Liyang Liu,Hongliang Ma,Xiaojun Li,Yuanyuan Huang,Kailiang Yu,Peng Zhu,Xing Li,Zaichun Zhu,Jinghui Lian,William K. Smith
标识
DOI:10.1038/s41467-024-49244-7
摘要
Abstract During extensive periods without rain, known as dry-downs, decreasing soil moisture (SM) induces plant water stress at the point when it limits evapotranspiration, defining a critical SM threshold (θ crit ). Better quantification of θ crit is needed for improving future projections of climate and water resources, food production, and ecosystem vulnerability. Here, we combine systematic satellite observations of the diurnal amplitude of land surface temperature (dLST) and SM during dry-downs, corroborated by in-situ data from flux towers, to generate the observation-based global map of θ crit . We find an average global θ crit of 0.19 m 3 /m 3 , varying from 0.12 m 3 /m 3 in arid ecosystems to 0.26 m 3 /m 3 in humid ecosystems. θ crit simulated by Earth System Models is overestimated in dry areas and underestimated in wet areas. The global observed pattern of θ crit reflects plant adaptation to soil available water and atmospheric demand. Using explainable machine learning, we show that aridity index, leaf area and soil texture are the most influential drivers. Moreover, we show that the annual fraction of days with water stress, when SM stays below θ crit , has increased in the past four decades. Our results have important implications for understanding the inception of water stress in models and identifying SM tipping points.
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