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首页> 外文期刊>The Science of the Total Environment >Impact factors and mechanisms of dissolved reactive phosphorus (DRP) losses from agricultural fields: A review and synthesis study in the Lake Erie basin
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Impact factors and mechanisms of dissolved reactive phosphorus (DRP) losses from agricultural fields: A review and synthesis study in the Lake Erie basin

机译:农田溶解性反应性磷损失的影响因素和机理:伊利湖流域的综述与综合研究

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摘要

Dissolved Reactive Phosphorus (DRP) losses from agricultural fields promote algae growth in water bodies, and may increase the risk of Harmful Algal Blooms (HABs). Using existing data from the Lake Erie Basin, we applied multiple regression analysis to better understand the impacts of both site-specific conditions (e.g., soil types/ properties) and management practices (e.g., Agricultural Conservation Practices [ACP]) on annual DRP losses in subsurface and surface runoff. Results showed that soil properties significantly impact DRP losses. Greater DRP losses were associated with increased soil pH and Soil Test Phosphorus (STP). By contrast, soil organic matter (SOM) was inversely correlated with DRP losses. Soil clay content was also inversely correlated with DRP subsurface losses, but had no impact on DRP surface losses. The ACPs evaluated had varied effectiveness on DRP loss reduction. Cropping systems involving soybean could reduce DRP subsurface losses, whereas winter cover crops could cause unintended DRP subsurface losses. Cropping systems involving soybean and cover crops, however, had no impact on DRP surface losses. In addition, no-till and conservation tillage also enhanced DRP losses compared to conventional tillage, particularly for soils with high SOM and/or high clay content Precipitation amount and fertilizer application rate significantly increased DRP surface losses as expected. Fertilizer application rate, however, had no impact on DRP subsurface losses. The impact of precipitation amount on DRP subsurface losses depends on STP levels. Precipitation amount significantly increases DRP subsurface losses when STP is higher (>41 mg kg~(-1) in this analysis). The optimal STP level for crop growth is 30 to 50 mg kg~(-1). Results from this study help us to better understand DRP losses and the effectiveness of ACPs for controlling them. We suggest taking soil surveys and soil tests into consideration when designing and/or implementing ACPs to manage DRP losses. Furthermore, the method we used for this study could be applied to other agricultural regions to investigate impacts of site-specific conditions and management practices on water quality.
机译:农田中溶解的活性磷(DRP)的损失会促进藻类在水体中的生长,并可能增加有害藻华(HABs)的风险。利用来自伊利湖流域的现有数据,我们进行了多元回归分析,以更好地理解特定地点条件(例如土壤类型/特性)和管理实践(例如农业保护实践[ACP])对年度DRP损失的影响在地下和地表径流中。结果表明,土壤性质显着影响DRP损失。 DRP损失更大与土壤pH值和土壤测试磷(STP)增加有关。相比之下,土壤有机质(SOM)与DRP损失成反比。土壤黏土含量也与DRP地下损失成反比,但对DRP表面损失没有影响。评估的ACP对降低DRP损失的效果各不相同。涉及大豆的种植系统可以减少DRP地下损失,而冬季的覆盖作物可能导致DRP地下意外损失。但是,涉及大豆和覆盖作物的种植系统对DRP表面损失没有影响。此外,与传统耕作相比,免耕和保护性耕作也增加了DRP的损失,特别是对于具有高SOM和/或高粘土含量的土壤而言。降水量和肥料施用量显着增加了DRP的表面损失,这是预期的。然而,肥料施用量对DRP地下损失没有影响。降水量对DRP地下损失的影响取决于STP水平。当STP较高时(在此分析中> 41 mg kg〜(-1)),沉淀量会显着增加DRP地下损失。作物生长的最佳STP水平为30至50 mg kg〜(-1)。这项研究的结果有助于我们更好地了解DRP损失以及ACP对其进行控制的有效性。我们建议在设计和/或实施ACP来管理DRP损失时,应考虑土壤调查和土壤测试。此外,我们用于本研究的方法可以应用于其他农业地区,以调查特定地点的条件和管理实践对水质的影响。

著录项

  • 来源
    《The Science of the Total Environment》 |2020年第20期|136624.1-136624.13|共13页
  • 作者单位

    Oak Ridge Institute for Science and Education (ORLSE) US Environmental Protection Agency Office of Research and Development Research Triangle Park NC 27711 United States of America;

    U.S. Environmental Protection Agency. Office of Research and Development Watershed & Ecosystem Characterization Division Center for Environmental Measurement and Modeling Research Triangle Park NC 27711 United States of America;

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

    DRP loss; Lake Erie; Agricultural conservation practices; Soil properties;

    机译:DRP损失;伊利湖;农业保护措施;土壤性质;

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