自行车
环境科学
氮气循环
自然(考古学)
氮气
接头(建筑物)
生态学
环境资源管理
地理
林业
生物
工程类
化学
土木工程
有机化学
考古
作者
Yong Zhang,Xiaoli Cheng,César Terrer,Woo‐Jung Choi,Ji Chen,Yiqi Luo,Philippe Ciais
摘要
Abstract Global soil nitrogen (N) cycling remains poorly understood due to its complex driving mechanisms. Here, we present a comprehensive analysis of global soil δ 15 N, a stable isotopic signature indicative of the N input–output balance, using a machine‐learning approach on 10,676 observations from 2670 sites. Our findings reveal prevalent joint effects of climatic conditions, plant N‐use strategies, soil properties, and other natural and anthropogenic forcings on global soil δ 15 N. The joint effects of multiple drivers govern the latitudinal distribution of soil δ 15 N, with more rapid N cycling at lower latitudes than at higher latitudes. In contrast to previous climate‐focused models, our data‐driven model more accurately simulates spatial changes in global soil δ 15 N, highlighting the need to consider the joint effects of multiple drivers to estimate the Earth's N budget. These insights contribute to the reconciliation of discordances among empirical, theoretical, and modeling studies on soil N cycling, as well as sustainable N management.
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