生物群落
水槽(地理)
解耦(概率)
涡度相关法
碳汇
环境科学
天蓬
气候变化
碳源
大气科学
生态学
生态系统
生物
地理
地质学
工程类
控制工程
地图学
生物化学
作者
Antoine Cabon,Steven A. Kannenberg,M. Altaf Arain,Flurin Babst,Dennis Baldocchi,Soumaya Belmecheri,Nicolas Delpierre,Rossella Guerrieri,Justin T. Maxwell,Shawn McKenzie,Frederick C. Meinzer,D. J. Moore,Christoforos Pappas,Adrian V. Rocha,Paul Szejner,Masahito Ueyama,Danielle Ulrich,Caroline Vincke,Steven L. Voelker,Jingshu Wei,David R. Woodruff,William R. L. Anderegg
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2022-05-12
卷期号:376 (6594): 758-761
被引量:107
标识
DOI:10.1126/science.abm4875
摘要
Uncertainties surrounding tree carbon allocation to growth are a major limitation to projections of forest carbon sequestration and response to climate change. The prevalence and extent to which carbon assimilation (source) or cambial activity (sink) mediate wood production are fundamentally important and remain elusive. We quantified source-sink relations across biomes by combining eddy-covariance gross primary production with extensive on-site and regional tree ring observations. We found widespread temporal decoupling between carbon assimilation and tree growth, underpinned by contrasting climatic sensitivities of these two processes. Substantial differences in assimilation-growth decoupling between angiosperms and gymnosperms were determined, as well as stronger decoupling with canopy closure, aridity, and decreasing temperatures. Our results reveal pervasive sink control over tree growth that is likely to be increasingly prominent under global climate change.
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