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首页> 外文期刊>International journal of ecohydrology and hydrobiology >New perspective for eco-hydrology model to constrain missing role of inland waters on boundless biogeochemical cycle in terrestrial-aquatic continuum
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New perspective for eco-hydrology model to constrain missing role of inland waters on boundless biogeochemical cycle in terrestrial-aquatic continuum

机译:生态水文学模型的新视角,以限制内陆水域对陆生-水生连续体中无限的地球化学循环的作用

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Recent research shows that inland water may play some role in carbon cycling though its contribution has remained uncertain due to a limited reliable data. From the viewpoint of scale similarity and discontinuity of eco-hydrological processes, it is important to identify spatial coupling of ecosystems including energy, materials, and organisms flows across their boundaries. One of the fundamentals of eco-hydrology model is to incorporate a complex relation between soil, water, temperature, plant, and carbon. In this paper, the author reviewed previous progress in eco-hydrology model focusing on surface- groundwater connectivity and hydrologic-geomorphic-ecological processes interaction. He also reviewed the recent progress in modeling, the role of inland water on biogeochemical cycle by compiling various datasets of hydrological and biogeochemical cycle. Then, he showed a new advanced model coupling eco-hydrology and biogeochemi- cal cycle (NICE-BGC). The model results of both CO_2 evasion and carbon transport to the ocean were reasonably in good agreement with previous data. In order to decrease uncertainty about carbon cycle, it became clear the previous empirical estimation should be extended to this process-oriented model and higher resolution data to further clarify mechanistic interplay between inorganic and organic carbon and its relationship to nitrogen and phosphorus in terrestrial-aquatic linkages. NICE-BGC would play important role in re-evaluation of greenhouse gas budget of the biosphere, quantification of hot spots, and bridging gap between top-down and bottom-up approaches in global carbon budget. This will also help to integrate knowledge and provide understanding needed for reaching sustainability by 2030 in UN Sustainable Development Goals.
机译:最近的研究表明,由于有限的可靠数据,内陆水的贡献仍不确定,内陆水可能在碳循环中发挥一定作用。从尺度的相似性和生态水文过程的不连续性来看,重要的是确定生态系统的空间耦合,包括跨越边界的能量,物质和生物流。生态水文学模型的基本原理之一是要结合土壤,水,温度,植物和碳之间的复杂关系。在本文中,作者回顾了生态水文学模型的最新进展,重点关注地表-地下水连通性和水文-地貌-生态过程的相互作用。他还通过汇编水文和生物地球化学循环的各种数据集,回顾了建模方面的最新进展,以及内陆水在生物地球化学循环中的作用。然后,他展示了一种结合生态水文学和生物地球化学循环的新的先进模型(NICE-BGC)。 CO_2逃逸和碳向海洋传输的模型结果与先前的数据基本吻合。为了减少碳循环的不确定性,很明显,以前的经验估计应该扩展到这种面向过程的模型和更高分辨率的数据,以进一步阐明无机碳和有机碳之间的机理相互作用以及其与陆生水生生物中氮和磷的关系。联系。 NICE-BGC将在重新评估生物圈温室气体预算,量化热点以及弥合全球碳预算中自上而下和自下而上方法之间的差距方面发挥重要作用。这也将有助于整合知识并提供实现联合国可持续发展目标到2030年实现可持续发展所需的理解。

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