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Model testing for nitrous oxide (N2O) fluxes from Amazonian cattle pastures

机译:来自亚马逊牛牧场的一氧化二氮(N2O)通量的模型测试

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摘要

Process-oriented models have become important tools in terms of quantification of environmental changes, for filling measurement gaps, and building of future scenarios. It is especially important to couple model application directly with measurements for remote areas, such as Southern Amazonia, where direct measurements are difficult to perform continuously throughout the year. Processes and resulting matter fluxes may show combinations of steady and sudden reactions to external changes. The potent greenhouse gas nitrous oxide (N2O) is known for its sensitivity to e.g. precipitation events, resulting in intense but short-term peak events (hot moments). These peaks have to be captured for sound balancing. However, prediction of the effect of rainfall events on N2O peaks is not trivial, even for areas under distinct wet and dry seasons. In this study, we used process-oriented models in both a pre- and post-measurement manner in order to (a) determine important periods for N2O-N emissions under Amazonian conditions and (b) calibrate the models to Brazilian pastures based on measured data of environment conditions (soil moisture and C-org) and measured N2O-N fluxes. During the measurement period (early wet season), observed emissions from three cattle pastures did not react to precipitation events, as proposed by the models. Here both process understanding and models have to be improved by long-term data in high resolution in order to prove or disprove a lacking of N2O-N peaks. We strongly recommend the application of models as planning tools for field campaigns, but we still suggest model combinations and simultaneous usage. (C) 2016 Elsevier Ltd. All rights reserved.
机译:面向过程的模型已成为量化环境变化,填补测量空白和构建未来方案方面的重要工具。直接将模型应用程序与偏远地区(例如,南部亚马逊地区)的测量结果直接耦合非常重要,在这些地区,全年很难连续进行直接测量。过程和产生的物质通量可能显示出对外部变化的稳定和突然反应的组合。众所周知,有效的温室气体一氧化二氮(N2O)对例如二氧化碳的敏感性很高。降水事件,导致强烈但短期的高峰事件(炎热时刻)。必须捕获这些峰值以实现声音平衡。然而,即使对于处于不同干湿季的地区,预测降雨事件对N2O峰值的影响也不是一件容易的事。在这项研究中,我们以测量前和测量后的方式使用了面向过程的模型,以便(a)确定亚马逊条件下N2O-N排放的重要时期,并(b)根据测量结果将模型校准至巴西牧场环境条件(土壤湿度和C-org)数据以及测得的N2O-N通量。正如模型所建议的那样,在测量期间(早期的雨季),观察到的来自三个牧场的排放对降水事件没有反应。在这里,必须通过高分辨率的长期数据来改进过程的理解和模型,以证明或证明缺乏N2O-N峰。我们强烈建议您将模型用作野外活动的计划工具,但我们仍然建议模型组合和同时使用。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Atmospheric environment》 |2016年第10期|67-78|共12页
  • 作者单位

    Univ Gottingen, Inst Geog, Goldschmidtstr 5, D-37077 Gottingen, Germany|Helmholtz Ctr Environm Res, Dept Soil Phys, Theodor Lieser Str 4, D-06120 Halle, Saale, Germany;

    Helmholtz Ctr Environm Res, Dept Soil Phys, Theodor Lieser Str 4, D-06120 Halle, Saale, Germany;

    Helmholtz Ctr Environm Res, Dept Soil Phys, Theodor Lieser Str 4, D-06120 Halle, Saale, Germany;

    Fed Inst Geosci & Nat Resources, Stilleweg 2, D-30655 Hannover, Germany;

    Univ Koblenz Landau, Inst Environm Sci, Fortstr 7, D-76829 Landau, Pfalz, Germany;

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

    N2O-N fluxes; Modeling; Cattle pasture; Southern Amazonia;

    机译:N2O-N通量;建模;牛牧场;南亚马逊河;

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