干燥
蒸汽压差
环境科学
土壤水分
大气科学
涡度相关法
气孔导度
天蓬
光合作用
水蒸气
生态系统
土壤科学
化学
生态学
蒸腾作用
生物
生物化学
有机化学
免疫学
地质学
作者
Zheng Fu,Philippe Ciais,Iain Colin Prentice,Pierre Gentine,David Makowski,Ana Bastos,Xiangzhong Luo,Julia K. Green,Paul C. Stoy,Hui Yang,Tomohiro Hajima
标识
DOI:10.1038/s41467-022-28652-7
摘要
Both low soil water content (SWC) and high atmospheric dryness (vapor pressure deficit, VPD) can negatively affect terrestrial gross primary production (GPP). The sensitivity of GPP to soil versus atmospheric dryness is difficult to disentangle, however, because of their covariation. Using global eddy-covariance observations, here we show that a decrease in SWC is not universally associated with GPP reduction. GPP increases in response to decreasing SWC when SWC is high and decreases only when SWC is below a threshold. By contrast, the sensitivity of GPP to an increase of VPD is always negative across the full SWC range. We further find canopy conductance decreases with increasing VPD (irrespective of SWC), and with decreasing SWC on drier soils. Maximum photosynthetic assimilation rate has negative sensitivity to VPD, and a positive sensitivity to decreasing SWC when SWC is high. Earth System Models underestimate the negative effect of VPD and the positive effect of SWC on GPP such that they should underestimate the GPP reduction due to increasing VPD in future climates.
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