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首页> 外文期刊>Vadose zone journal VZJ >Numerical Simulation of Flow Dynamics during Macropore–Subsurface Drain Interactions Using HYDRUS
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Numerical Simulation of Flow Dynamics during Macropore–Subsurface Drain Interactions Using HYDRUS

机译:使用Hydrus Macropore-upburface漏极交互过程中流动动力学的数值模拟

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摘要

Macropores, such as those created by deep-burrowing earthworms, have the potential to be hydraulically connected not only to the soil surface but also to subsurface drains. This hydraulic connection may lead to rapid movement of surface-applied chemicals to receiving waters as they bypass the bulk of the soil matrix. In this study, a numerical model (HYDRUS) that solves the three-dimensional Richards equation for both matrix and macropore domains was used to analyze previously conducted experiments that contained a single, surface-connected or buried, artificial macropore and a subsurface drain installed in a laboratory soil column. Both matrix and macropore domains were parameterized using continuous soil hydraulic functions. Simulations confirmedthat surface-connected macropores were highly efficient preferential flow paths that substantially reduced arrival times to the subsurface drainage outlet, with this reduction being directly related to the length of the macropore. Surface-connected macropores need to extend at least halfway to the drain to have a noticeable effect (>50% reduction) on the arrival time. No significant changes were observed in total drain outflows for columns with laterally shifted macropores (away from a drain) compared with centered macropores unless the macropore depth extended significantly (>75%) into the profile. The model predicted that buried macropores became active and contributed to the total outflow only when pressure heads in the soil profile became positive.The effect of buried macropores on drain flow was investigated for a case where an initially partially saturated profile was drained. Under these conditions, the numerical simulations suggested that buried macropores could contribute up to 40% of the total outflow, which confirms laboratory observations with subsurface-drained soil columns with macropores.
机译:宏观团,例如由深钻蚯蚓产生的那些,可能不仅可以液压地连接到土壤表面,而且还具有液压表面,而且还具有液体表面,而且还具有液面。这种液压连接可能导致表面施加的化学物质快速移动到接收水域,因为它们绕过土壤基质的大部分。在本研究中,用于解决基质和大孔结构域的三维理查德方程的数值模型(Hydrus)用于分析含有单个,表面连接或埋地的人工大孔和安装在的地下排水的实验实验室土柱。使用连续的土壤液压功能参数化矩阵和宏观域。 Simulations确认表面连接的大孔是高效的优先流动路径,其基本上减少到地下排水出口的到达时间,这种减少与大孔的长度直接相关。表面连接的大孔需要至少半途而废地延伸到排水管以在到达时间上具有明显的效果(> 50%)。除非巨孔深度明显(> 75%)进入概况,否则在横向移位的宏观(远离排水管)的柱的总排出流出中没有显着变化。该模型预测,掩埋大孔变得活跃,仅当土壤曲线中的压头变为阳性时才贡献。研究了掩埋大孔对排出流动的影响,用于排出初始部分饱和的曲线。在这些条件下,数值模拟表明,埋下的大型巨大可能会导致总流出的40%,这证实了与宏观孔的地下排水土柱的实验室观察。

著录项

  • 来源
    《Vadose zone journal VZJ》 |2008年第3期|共10页
  • 作者单位

    Water Resources Group PBS&

    J Henderson NV formerly Dep. of Biosystems and Agricultural Engineering Oklahoma State Univ;

    Dep. of Biosystems and Agricultural Engineering Oklahoma State Univ. 120 Agricultural Hall Stillwater OK 74078;

    Dep. of Environmental Sciences A135 Bourns Hall Univ. of California Riverside CA 92521;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 天文学、地球科学;
  • 关键词

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