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首页> 外文期刊>Transactions of the ASAE >INVERSE ESTIMATION OF SOIL HYDRAULIC AND SOLUTE TRANSPORT PARAMETERS FROM TRANSIENT FIELD EXPERIMENTS: HETEROGENEOUS SOIL
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INVERSE ESTIMATION OF SOIL HYDRAULIC AND SOLUTE TRANSPORT PARAMETERS FROM TRANSIENT FIELD EXPERIMENTS: HETEROGENEOUS SOIL

机译:瞬态实验中土壤和水溶运量参数的反演:非均质土壤

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摘要

While inverse parameter estimation techniques for determining key parameters affecting water flow and solute transport are becoming increasingly common in saturated and unsaturated zone studies, their application to practical problems, such as irrigation, have received relatively little attention. In this article, we used the Levenberg-Marquardt optimization algorithm in combination with the HYDRUS-2D numerical code to estimate soil hydraulic and solute transport parameters of several soil horizons below experimental furrows. Three experiments were carried out, each of the same duration but with different amounts of water and solutes resulting from 6, 10, and 14 cm water depths in the furrows. Two more experiments were performed with the same amounts of applied water and solute and, consequently, for different durations, on furrows with depths of 6 and 10 cm of water. We first used a scaling method to characterize spatial variability in the soil hydraulic properties, and then simultaneously estimated the saturated hydraulic conductivity (K s ) and the longitudinal dispersivity (D L ) for the different horizons. Model predictions showed only minor improvements over those previously obtained assuming homogeneous soil profiles. In an effort to improve the predictions, we also carried out a two-step, sequential optimization in which we first estimated the soil hydraulic parameters followed by estimation of the solute transport parameters. This approach allowed us to include additional parameters in the optimization process. A sensitivity analysis was performed to determine the most sensitive hydraulic and solute transport parameters. Soil water contents were found to be most sensitive to the n parameter in van Genuchten's soil hydraulic model, followed by the saturated water content ( ? s ), while solute concentrations were most affected by ? s and D L . For these reasons, we estimated ? s and n for the various soil horizons of the sequential optimization process during the first step, and only D L during the second step. Sequential estimation somewhat improved predictions of the cumulative infiltration rates during the first irrigation event. It also significantly improved descriptions of the soil water content, particularly of the upper horizons, as compared to those obtained using simultaneous estimation, whereas deep percolation rates of water did not improve. Solute concentrations in the soil profiles were predicted equally well with both optimization approaches
机译:虽然用于确定影响水流和溶质运移的关键参数的反参数估计技术在饱和和非饱和带研究中越来越普遍,但它们在诸如灌溉等实际问题中的应用却很少受到关注。在本文中,我们结合Levenberg-Marquardt优化算法和HYDRUS-2D数值代码来估算实验犁沟以下几种土壤层的土壤水力和溶质运移参数。进行了三个实验,每个实验持续时间相同,但沟中水深分别为6、10和14厘米,产生的水和溶质的量不同。在水深分别为6厘米和10厘米的犁沟中,使用相同量的水和溶质进行了另外两个实验,因此,持续时间不同。我们首先使用缩放方法来表征土壤水力特性的空间变异性,然后同时估算饱和水力传导率(K s )和纵向分散性(D L )为不同的视野。模型预测表明,与先前假定均质土壤剖面的结果相比,仅有很小的改善。为了改进预测,我们还进行了两步,顺序优化,其中首先估算土壤水力参数,然后估算溶质运移参数。这种方法使我们可以在优化过程中包括其他参数。进行了敏感性分析,以确定最敏感的水力和溶质传输参数。在van Genuchten的土壤水力模型中,发现土壤含水量对n参数最敏感,其次是饱和含水量(? s ),而溶质浓度受?的影响最大。 s 和D L 。由于这些原因,我们估计?第一步中顺序优化过程的各个土壤层的 s 和n,第二步中仅D L 。顺序估计在某种程度上改善了第一次灌溉事件期间累积入渗率的预测。与同时进行估算相比,它也显着改善了对土壤含水量的描述,特别是对高层视野的描述,而水的深层渗透率却没有改善。两种优化方法均能很好地预测土壤剖面中的溶质浓度

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  • 来源
    《Transactions of the ASAE》 |2003年第4期|p.1097-1111|共15页
  • 作者单位

    Fariborz Abbasi, Soil Physicist, and Jan Feyen, Professor , Institute for Land and Water Management, Katholieke Universiteit Leuven, Belgium;

    Deiderik Jacques, Soil Physicist, Waste and Disposal Department, SCK-CEN, Mol, Belgium;

    and Jirka Simunek , Soil Physicist, and Martinus Th. van Genuchten, Research Leader, USDA-ARS, George E. Brown Jr. Salinity Laboratory, Riverside, California. Corresponding author: Jan Feyen, Institute for Land and Water Management, Vital Decosterstraat 102, 3000-Leuven, Belgium;

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

    Furrow irrigation; Heterogeneous soil; Inverse solution; Scaling; Solute transport; Water flow;

    机译:沟灌;非均质土壤;反解;缩放溶质运输;水流;

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