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首页> 外文期刊>The Journal of Ecology >Integrating plant-soil interactions into global carbon cycle models
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Integrating plant-soil interactions into global carbon cycle models

机译:将植物与土壤的相互作用整合到全球碳循环模型中

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1.Plant-soil interactions play a central role in the biogeochemical carbon (C), nitrogen (N) and hydrological cycles. In the context of global environmental change, they are important both in modulating the impact of climate change and in regulating the feedback of greenhouse gas emissions (CO2, CH4 and N2O) to the climate system.2.Dynamic global vegetation models (DGVMs) represent the most advanced tools available to predict the impacts of global change on terrestrial ecosystem functions and to examine their feedbacks to climate change. The accurate representation of plant-soil interactions in these models is crucial to improving predictions of the effects of climate change on a global scale.3.In this paper, we describe the general structure of DGVMs that use plant functional types (PFTs) classifications as a means to integrate plant-soil interactions and illustrate how models have been developed to improve the simulation of: (a) soil carbon dynamics, (b) nitrogen cycling, (c) drought impacts and (d) vegetation dynamics. For each of these, we discuss some recent advances and identify knowledge gaps.4.We identify three ongoing challenges, requiring collaboration between the global modelling community and process ecologists. First, the need for a critical evaluation of the representation of plant-soil processes in global models; second, the need to supply and integrate knowledge into global models; third, the testing of global model simulations against large-scale multifactor experiments and data from observatory gradients.5.Synthesis. This paper reviews how plant-soil interactions are represented in DGVMs that use PFTs and illustrates some model developments. We also identify areas of ecological understanding and experimentation needed to reduce uncertainty in future carbon coupled climate change predictions.
机译:1,植物与土壤的相互作用在生物地球化学碳(C),氮(N)和水文循环中起着核心作用。在全球环境变化的背景下,它们在调节气候变化的影响以及调节温室气体排放(CO2,CH4和N2O)对气候系统的反馈方面都非常重要。2动态全球植被模型(DGVM)代表可用的最先进的工具来预测全球变化对陆地生态系统功能的影响并检查其对气候变化的反馈。这些模型中植物-土壤相互作用的准确表示对于改善全球范围内气候变化影响的预测至关重要。3.在本文中,我们描述了使用植物功能类型(PFT)分类的DGVM的一般结构,一种整合植物-土壤相互作用并说明如何开发模型以改善以下方面的模拟的方法:(a)土壤碳动力学,(b)氮循环,(c)干旱影响和(d)植被动力学。对于这些问题,我们讨论了一些最新进展并确定了知识差距。4。我们确定了三个持续的挑战,这需要全球建模界与过程生态学家之间的合作。首先,需要对全球模型中植物土壤过程的代表性进行严格评估;第二,需要提供知识并将其整合到全球模型中;第三,针对大规模多因素实验和天文台梯度数据对全球模型模拟进行测试。5。综合。本文回顾了在使用PFT的DGVM中如何表示植物与土壤的相互作用,并说明了一些模型的发展。我们还确定了减少未来碳耦合气候变化预测的不确定性所需的生态理解和实验领域。

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