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河流系统中的氮循环:来源、转化和通量。

The cycle of nitrogen in river systems: sources, transformation, and flux.

机构信息

School of Environment, Beijing Normal University, State Key Joint Laboratory of Environmental Simulation and Pollution Control, Beijing, 100875, China.

出版信息

Environ Sci Process Impacts. 2018 Jun 20;20(6):863-891. doi: 10.1039/c8em00042e.

Abstract

Nitrogen is a requisite and highly demanded element for living organisms on Earth. However, increasing human activities have greatly altered the global nitrogen cycle, especially in rivers and streams, resulting in eutrophication, formation of hypoxic zones, and increased production of N2O, a powerful greenhouse gas. This review focuses on three aspects of the nitrogen cycle in streams and rivers. We firstly introduce the distributions and concentrations of nitrogen compounds in streams and rivers as well as the techniques for tracing the sources of nitrogen pollution. Secondly, the overall picture of nitrogen transformations in rivers and streams conducted by organisms is described, especially focusing on the roles of suspended particle-water surfaces in overlying water, sediment-water interfaces, and riparian zones in the nitrogen cycle of streams and rivers. The coupling of nitrogen and other element (C, S, and Fe) cycles in streams and rivers is also briefly covered. Finally, we analyze the nitrogen budget of river systems as well as nitrogen loss as N2O and N2 through the fluvial network and give a summary of the effects and consequences of human activities and climate change on the riverine nitrogen cycle. In addition, future directions for the research on the nitrogen cycle in river systems are outlined.

摘要

氮是地球上生物生存所必需的高度需求元素。然而,人类活动的增加极大地改变了全球氮循环,特别是在河流和溪流中,导致富营养化、缺氧区的形成以及 N2O 的大量产生,N2O 是一种强大的温室气体。本综述重点关注河流和溪流氮循环的三个方面。我们首先介绍了氮化合物在河流和溪流中的分布和浓度以及追踪氮污染来源的技术。其次,描述了生物体在河流和溪流中进行的氮转化的全貌,特别是重点关注悬浮颗粒-水表面、沉积物-水界面和河流两岸带在河流和溪流氮循环中的作用。还简要介绍了河流和溪流中氮与其他元素(C、S 和 Fe)循环的耦合。最后,我们分析了河流系统的氮预算以及通过河流网络以 N2O 和 N2 的形式损失的氮,并总结了人类活动和气候变化对河流氮循环的影响和后果。此外,还概述了河流系统氮循环研究的未来方向。

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