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Soil fertility and corn and soybean yield and quality in a six-year nitrogen and phosphorus fertilization experiment.

机译:在为期六年的氮,磷施肥试验中,土壤肥力和玉米和大豆的产量和品质。

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摘要

Optimum management of nitrogen (N) and phosphorus (P) fertilizers for corn [Zea mays L.] and soybean [Glycine max (L.) Merr.] production requires quantitative understanding of multiple soil processes and crop responses, including supply and immobilization of N and P by soil, the response of yield and quality to nutrient availability, and the relationships and interactions between N and P cycling, crop response, and other soil physical and chemical variables.;We conducted a six-year experiment on two 16-ha fields on glacial-till soils in south-central Minnesota. In each year of a corn--soybean rotation, we measured soil physical and chemical parameters and grain yield and quality at a 0.014-ha resolution within each field. These observations coincided with placement of a randomized complete block, split plot design of N and P fertilizer treatments.;Spatial patterns of mineralizable N were consistent over time. Mineralizable N was highly correlated to soil nitrate at a well-drained site, but not at a poorly-drained site. Increases in available soil P per kg of net P addition were significantly related to soil pH.;Within fields, spatial patterns of soybean yields were highly correlated across years, and we observed consistent relationships between yield and soil variables. Overall, soybean yield related positively to soil P and Zn and negatively to pH at all site-years. Quadratic-plateau regression models of soybean yield in relation to soil P and Zn indicate that in high pH soils at these sites, yield is optimized when soil P and Zn levels are higher than current recommendations.;Corn yields responded significantly to N rate and N rate by P rate interaction in all site-years. Whole-field economic optimum N rate differed significantly by site-year and by P treatment at some site-years.;Site-specific P fertilization should account for spatial variation in soil P buffering capacity. Nitrogen mineralization and NxP nutrient interactions should be accounted for in agronomic management decisions for corn production. The consistent influence of soil pH on nutrient cycling and crop response indicates the potential benefit to amelioration of high pH in calcareous glacial-till soils. Results highlight the significance of spatial variability in nutrient cycling to crop management.
机译:玉米(Zea mays L.)和大豆[Glycine max(L.)Merr。]生产的氮(N)和磷(P)肥料的最佳管理需要对多种土壤过程和作物响应(包括供应和固定化)的定量了解。土壤中的氮和磷,产量和质量对养分有效性的响应以及氮磷循环,作物响应以及其他土壤理化变量之间的关系和相互作用。我们对两个16-明尼苏达州中南部冰川耕作土壤上的公顷土地。在玉米-大豆轮作的每一年中,我们在每个田间以0.014公顷的分辨率测量土壤理化参数以及谷物的产量和质量。这些观察结果与随机完整块的放置,氮肥和磷肥处理的分割图设计相吻合。可矿化氮的空间格局随时间而一致。在排水良好的地点,可矿化氮与土壤硝酸盐高度相关,但在排水不良的地点却不相关。每公斤净磷添加量中有效土壤磷的增加与土壤pH值显着相关。在田间,大豆产量的空间格局多年来一直高度相关,我们观察到了产量与土壤变量之间的一致关系。总体而言,在所有站点年中,大豆产量与土壤P和Zn呈正相关,与pH呈负相关。大豆产量相对于土壤P和Zn的二次高原回归模型表明,在这些地点的高pH值土壤中,当土壤P和Zn含量高于当前建议值时,大豆产量得到优化;玉米产量对氮素和氮素的响应显着在所有站点年中按P比率交互进行比率。全田经济最佳氮素的施用率因部位年限和某些部位年限的磷处理而有显着差异。特定于土壤的磷肥应解释土壤磷缓冲能力的空间差异。在玉米生产的农艺管理决策中应考虑氮矿化和NxP养分的相互作用。土壤pH值对养分循环和作物响应的持续影响表明,钙质冰川耕作土壤对改善高pH值具有潜在的好处。结果突出了养分循环中的空间变异性对作物管理的重要性。

著录项

  • 作者

    Anthony, Peter M.;

  • 作者单位

    University of Alaska Fairbanks.;

  • 授予单位 University of Alaska Fairbanks.;
  • 学科 Agriculture Agronomy.;Agriculture Soil Science.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 225 p.
  • 总页数 225
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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