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Future challenges in coupled C-N-P cycle models for terrestrial ecosystems under global change: a review

机译:全球变化下陆地生态系统耦合C-N-P循环模型的未来挑战:综述

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摘要

Climate change has consequences for terrestrial functioning, but predictions of plant responses remain uncertain because of the gaps in the representation of nutrient cycles and C-N-P interactions in ecosystem models. Here, we review the processes that are included in ecosystem models, but focus on coupled C-N-P cycle models. We highlight important plant adjustments to climate change, elevated atmospheric CO2, and/or nutrient limitations that are currently not-or only partially-incorporated in ecosystem models by reviewing experimental studies and compiling data. Plant adjustments concern C:N:P stoichiometry, photosynthetic capacity, nutrient resorption rates, allocation patterns, symbiotic N-2 fixation and root exudation (phosphatases, carboxylates) and the effect of root exudation on nutrient mobilization in the soil rhizosphere (P solubilization, biochemical mineralization of organic P and priming effect). We showed that several plant adjustments could be formulated and calibrated using existing experimental data in the literature. Finally, we proposed a roadmap for future research because improving ecosystem models necessitate specific data and collaborations between modelers and empiricists.
机译:气候变化对陆地功能产生影响,但由于生态系统模型中养分循环和C-N-P相互作用的表述存在差距,因此对植物反应的预测仍不确定。在这里,我们回顾了生态系统模型中包含的过程,但重点关注耦合的C-N-P循环模型。通过回顾实验研究和汇总数据,我们重点介绍了针对气候变化,大气中二氧化碳含量升高和/或养分限制的重要植物调整,这些调整目前尚未或仅部分纳入了生态系统模型。植物调整涉及C:N:P的化学计量,光合能力,养分吸收速率,分配方式,共生N-2固定和根系渗出(磷酸酶,羧酸盐)以及根系渗出对土壤根际养分迁移的影响(P增溶,有机磷的生化矿化和引发作用)。我们表明,可以使用文献中的现有实验数据来制定和校准几种工厂调整措施。最后,我们提出了一个未来研究的路线图,因为改善生态系统模型需要特定的数据以及建模者和经验主义者之间的协作。

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