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Modeling spatiotemporal influences on the hydrothermal environment of the seedling recruitment microsite.

机译:模拟时空对幼苗募集微场所水热环境的影响。

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摘要

Modeling the seedling recruitment microsite involves characterization of the soil environment of the shallow profile from which weed seedlings recruit. Understanding the environment of the seedling recruitment microsite is the prelude to weed emergence studies. Because of spatial and temporal heterogeneity of the recruitment microsite, sufficient measurements are often not feasible. An experiment was established in 2003 and 2004 across topography within an annually cropped field in south-central Manitoba to determine the effect that hillslope aspect and position, and soil residue and depth would have on microsite environment within the shallow seedling recruitment zone. Microclimatic, topographic, soil surface and soil properties were assessed in the context of the weed recruitment microsite. The soil water retention characteristic was measured by pressure plate to determine water availability to germinating seeds at the various topographic positions. The soil water characteristic was evaluated across topography and soil depth. Evaluation of the soil water characteristic by pedotransfer function indicated that a single soil water characteristic is representative of the recruitment zone. Field and laboratory experimental measurements were used as parameterization for the simultaneous heat and water (SHAW) model to generate continuous water and temperature profiles for the recruitment zone. Soil temperature and temperature fluctuation decreased with depth in the recruitment zone. Despite differences of texture, bulk density, and organic matter across topography and soil depth, the soil water characteristic differed only across topography. Soil water potential fluctuated considerably at the soil surface due to numerous precipitation events and direct evaporation. Implications for germinating seeds is that the seedling recruitment zone is influenced by spatial effects of topography and the vertical location of the seed microsite. Physical process based modeling used in this study to predict temperature and water within the seedling recruitment zone enables better understanding of interactions between above-ground microclimate and the recruitment microsite. Such interactions enable linkage between atmospheric models and recruitment models that can enhance our ability to evaluate crop management decisions.
机译:对幼苗募集的微型站点进行建模涉及表征杂草幼苗从中募集的浅层土壤环境的特征。了解幼苗募集场所的环境是杂草出苗研究的序幕。由于招募微型网站的时空异质性,通常无法进行足够的测量。于2003年和2004年在马尼托巴中南部一个每年种植的田地中跨地形进行了一项实验,以确定坡度和位置,土壤残留物和深度对浅苗募集区内微场所环境的影响。在杂草募集微型地点的背景下评估了微气候,地形,土壤表面和土壤特性。通过压板测量土壤保水特性,以确定在不同地形位置发芽种子的水利用率。在地形和土壤深度范围内评估了土壤水分特征。通过pedotransfer函数对土壤水分特征的评估表明,单一土壤水分特征代表着征集区。现场和实验室实验测量值用作同时供热和用水(SHAW)模型的参数化,以生成补充区的连续水和温度曲线。土壤温度和温度波动随着吸收区深度的增加而减小。尽管在地形和土壤深度上质地,容重和有机物存在差异,但土壤水特征仅在地形上有所差异。由于大量降水事件和直接蒸发,土壤表面的水势波动很大。对种子发芽的暗示是幼苗的募集区受地形的空间效应和种子微位点的垂直位置的影响。在这项研究中使用的基于物理过程的模型来预测幼苗募集区内的温度和水分,可以更好地理解地上微气候与募集微场所之间的相互作用。这种互动使大气模型和招聘模型之间可以建立联系,从而可以增强我们评估作物管理决策的能力。

著录项

  • 作者

    Bullied, William John.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Agriculture Agronomy.Agriculture Soil Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 238 p.
  • 总页数 238
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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