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Image-based quantification of soil microbial dead zones induced by nitrogen fertilization

机译:基于图像的氮肥诱导的土壤微生物死区的量化

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摘要

Microbial communities in agricultural soils underpin many ecosystem services including the maintenance of soil structure, food production, water purification and carbon storage. However, the impact of fertilization on the health of microbial communities is not well understood. This study investigates the spatial and temporal dynamics of nitrogen (N) transport away from a fertilizer granule with pore scale resolution. Specifically, we examined how soil structure and moisture content influence fertilizer derived N movement through the soil pore network and the subsequent impact of on soil microbial communities. We develop a mathematical model to describe N transport and reactions in soil at the pore-scale. Using X-ray Computed Tomography scans, we reconstructed a microscale description of a soil-pore geometry as a computational mesh. Solving two-phase water/air model produced pore-scale water distributions at 15, 30 and 70% water-filled pore volume. The N-speciation model considered ammonium (NH_4~-), nitrate (NO_3~-) and dissolved organic N (DON), and included N immobilization, ammonification and nitrification processes, as well as diffusion in soil solution. We simulated the dissolution of a fertilizer pellet and a pore scale N cycle at three different water saturations. To aid interpretation of the model results, microbial activity at a range of N concentrations was measured. The model showed that the diffusion and concentration of N in water films is critically dependent upon soil moisture and N species. We predict that the maximum NH_4~+ and NO_3~- concentrations in soil solution around the pellet under dry conditions are in the order of 1 × 103 and 1 × 104 mol m~(-3) respectively, and under wet conditions 2 × 10~2 and 1 × 10~3 mol m~(-3), respectively. Supporting experimental evidence suggests that these concentrations would be sufficient to reduce microbial activity in the short-term in the zone immediately around the fertilizer pellet (ranging from 0.9 to 3.8 mm), causing a major loss of soil biological functioning. This model demonstrates the importance of pore-scale processes in regulating N movement and their interactions with the soil microbiome.
机译:农业土壤中的微生物群落是许多生态系统服务,包括维持土壤结构,食品生产,净水和碳储存。然而,施肥对微生物社区健康的影响并不顺利。本研究研究了氮气(n)输送的空间和时间动态,远离肥料颗粒的孔隙率分辨率。具体而言,我们检查了土壤结构和水分含量如何影响肥料通过土孔网络和土壤微生物群落的后续影响。我们开发了一种数学模型,以描述孔隙尺度的土壤中的n次运输和反应。使用X射线计算机断层扫描扫描,我们重建了作为计算网格的土壤孔几何形状的微观描述。求解两相水/空气模型在15,30%和70%的水填充孔体积产生孔隙尺度水分布。 N形模型被认为是铵(NH_4〜 - ),硝酸盐(NO_3〜 - )和溶解的有机N(DON),并包括n个固定化,氨化和硝化过程,以及土壤溶液中的扩散。我们模拟了肥料颗粒的溶解,在三种不同的水饱和饱和饱和饱和度循环。为了帮助解释模型结果,测量了一系列浓度的微生物活性。该模型表明,水膜中N的扩散和浓度均可依赖于土壤水分和N种。我们预测干燥条件下颗粒周围的土壤溶液中的最大NH_4〜+和NO_3〜 - 浓度分别为1×103和1×104mol m〜(-3),润湿条件2×10 〜2和1×10〜3 mol m〜(-3)。支持实验证据表明,这些浓度足以在肥料颗粒周围立即减少短期内的短期活性(范围为0.9〜3.8毫米),导致土壤生物功能的主要损失。该模型展示了孔隙尺度过程在调节N运动及其与土壤微生物组的相互作用方面的重要性。

著录项

  • 来源
    《The Science of the Total Environment》 |2020年第jul20期|138197.1-138197.11|共11页
  • 作者单位

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK Computational Science Ltd 30a Bedford Place Southampton SO15 2DG UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

    School of Natural Sciences Bangor University Bangor LL57 2UW UK Interdisciplinary Research Centre for Agriculture Green Development in Yangtze River Basin Southwest University Chongqing China;

    School of Natural Sciences Bangor University Bangor LL57 2UW UK SoilsWest UWA School of Agriculture and Environment The University of Western Australia Perth WA 6009 Australia;

    Bioengineering Sciences Research Group Department of Mechanical Engineering School of Engineering Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK;

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

    Nitrogen cycling; Fertilizer dynamics; Pore-scale modeling; Soil health; Diffusion; Microbial activity;

    机译:氮循环;肥料动力学;孔径造型;土壤健康;扩散;微生物活动;

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