首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Canopy Nitrogen, Carbon Assimilation, And Albedo In Temperate And Boreal Forests: Functional Relations And Potential Climate Feedbacks
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Canopy Nitrogen, Carbon Assimilation, And Albedo In Temperate And Boreal Forests: Functional Relations And Potential Climate Feedbacks

机译:温带和北方森林的冠层氮,碳同化和反照率:功能关系和潜在的气候反馈

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The availability of nitrogen represents a key constraint on carbon cycling in terrestrial ecosystems, and it is largely in this capacity that the role of N in the Earth's climate system has been considered. Despite this, few studies have included continuous variation in plant N status as a driver of broad-scale carbon cycle analyses. This is partly because of uncertainties in how leaf-level physiological relationships scale to whole ecosystems and because methods for regional to continental detection of plant N concentrations have yet to be developed. Here, we show that ecosystem CO_2 uptake capacity in temperate and boreal forests scales directly with whole-canopy N concentrations, mirroring a leaf-level trend that has been observed for woody plants worldwide. We further show that both CO_2 uptake capacity and canopy N concentration are strongly and positively correlated with shortwave surface albedo. These results suggest that N plays an additional, and overlooked, role in the climate system via its influence on vegetation reflectivity and shortwave surface energy exchange. We also demonstrate that much of the spatial variation in canopy N can be detected by using broad-band satellite sensors, offering a means through which these findings can be applied toward improved application of coupled carbon cycle-climate models.
机译:氮的可用性代表着陆地生态系统中碳循环的关键限制因素,并且正是在这种能力下,人们才考虑了氮在地球气候系统中的作用。尽管如此,很少有研究将植物氮素状态的连续变化作为大规模碳循环分析的驱动力。部分原因是叶水平的生理关系如何扩展到整个生态系统尚不确定,并且尚未开发出从区域到大陆范围检测植物氮浓度的方法。在这里,我们表明温带和北方森林的生态系统CO_2吸收能力直接与全冠层N的浓度成正比,反映了全世界木本植物观察到的叶水平趋势。我们进一步表明,CO_2的吸收能力和冠层N浓度均与短波表面反照率强而正相关。这些结果表明,氮通过对植被反射率和短波表面能交换的影响,在气候系统中扮演着另外一个被忽视的角色。我们还证明,可以通过使用宽带卫星传感器来检测冠层N的大部分空间变化,从而提供一种手段,通过这些手段可以将这些发现应用于改进的碳循环-气候耦合模型的应用。

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