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首页> 外文期刊>Science of the total environment >Strong turbulence accelerates sediment nitrification-denitrification for nitrogen loss in shallow lakes
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Strong turbulence accelerates sediment nitrification-denitrification for nitrogen loss in shallow lakes

机译:强烈的湍流加速沉积物硝化反硝化在浅湖中的氮气损失

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摘要

Due to energy dissipation, turbulent energy reaching bed sediment greatly differs in lakes with different depths, which potentially affects sediment denitrification and thereby nitrogen loss. In this study, we explored the impacts of turbulent energy reaching sediment on sediment nitrification rate using turbulence simulation experiments, and analyzed its role in determining sediment nitrogen loss in global lakes by investigating the relationship between denitrification rate with lake depth. Results demonstrated that sediment denitrification rate is affected by water depth in lakes with a depth of <~10 m, in which the rate was negatively correlated with lake depth, and maintained stably at low levels of <2.4 mg N m~(-2) day~(-1) in lakes with a depth of >~10 m. In shallow lakes, stronger turbulence reaching on sediment yielded higher nitrogen loss rate. Compare with the control, cumulated nitrogen loss from sediment increased by 10% at the turbulent velocity of 4.33 cm s~(-1) upon sediment. It is possibly because turbulence promoted faster transport of oxygen to surface sediment and enhanced the mineralization of buried organic matters to feed nitrification, which subsequently accelerated denitrification and thereby nitrogen loss. This study can add to our understanding of the role of lake morphology in nitrogen biogeochemical cycles.
机译:由于能量耗散,湍流能量达到床沉积物在具有不同深度的湖泊中大大不同,这可能影响沉积物反硝化,从而氮气损失。在本研究中,我们探讨了湍流模拟实验对湍流能量达到沉积物硝化率的影响,并通过研究湖泊深度反硝化率之间的关系来分析其在全球湖泊中泥沙氮损失的作用。结果表明,沉积物反硝化率受到湖泊中深度的水深的影响,深度<〜10米,其中速率与湖泊深度呈负相关,并且在低水平的<2.4mg n m〜(-2)下保持稳定地保持日〜(1)在湖泊中,深度为>〜10米。在浅湖中,达到沉积物的更强的湍流产生较高的氮损失率。与控制,沉积物湍流速度为4.33cm S〜(-1)的沉积物中累积氮气损失增加了10%。它可能是因为湍流促进了氧气的速度更快地传输到表面沉积物,并增强了掩埋有机物的矿化以进料硝化,随后加速脱氮,从而氮气损失。本研究可以帮助我们对湖形态学在氮生物地球化学循环中的作用的理解。

著录项

  • 来源
    《Science of the total environment 》 |2021年第20期| 143210.1-143210.6| 共6页
  • 作者单位

    Jiangsu Collaborative Innovation Center of Atmospheric Environment and Equipment Technologies Jiangsu Key Laboratory of Atmospheric Environmental Monitoring & Pollution Control School of Environmental Science & Engineering Nanjing University of Information Science & Technology Nanjing 210044 China;

    Jiangsu Collaborative Innovation Center of Atmospheric Environment and Equipment Technologies Jiangsu Key Laboratory of Atmospheric Environmental Monitoring & Pollution Control School of Environmental Science & Engineering Nanjing University of Information Science & Technology Nanjing 210044 China;

    Taihu Lake Laboratory Ecosystem Station State Key Laboratory of Lake Science and Environment Nanjing Institute of Geography and Limnology Chinese Academy of Sciences Nanjing210008 China;

    Jiangsu Collaborative Innovation Center of Atmospheric Environment and Equipment Technologies Jiangsu Key Laboratory of Atmospheric Environmental Monitoring & Pollution Control School of Environmental Science & Engineering Nanjing University of Information Science & Technology Nanjing 210044 China;

    School of Engineering Westlake University Hangzhou 310024 China;

    Taihu Lake Laboratory Ecosystem Station State Key Laboratory of Lake Science and Environment Nanjing Institute of Geography and Limnology Chinese Academy of Sciences Nanjing210008 China School of Geography & Ocean Science Nanjing University Nanjing 210093 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Turbulence; Denitrification; Nitrification; Nitrogen loss; Lake depth;

    机译:湍流;反硝化;硝化;氮气损失;湖泊深度;

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