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首页> 外文期刊>Journal of Hydrology >Bromide transport at a tile-drained field site: experiment, and one- and two-dimensional equilibrium and non-equilibrium numerical modeling
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Bromide transport at a tile-drained field site: experiment, and one- and two-dimensional equilibrium and non-equilibrium numerical modeling

机译:瓷砖排水田间的溴化物迁移:实验以及一维和二维平衡与非平衡数值模拟

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摘要

Systematically tile drained field sites have been recognized as one major source for surface water contamination with agrochemicals. To study the effects of tile drainage and physical non-equilibrium on solute transport in structured soil, bromide (Br-) transport experiments were carried out on three plots (A, B, Q with different tile drain depths (128, 101, 96 cm) and spacings (16, 18 and 12 m) at the Infeld experimental field site (North-West Germany). Tile drain outflow along with Br- concentrations were monitored over a half-year period. For all three plots, fast Br- breakthrough was observed with Br- concentrations fluctuating around levels below 6 mg/L during the experiment without a distinct concentration maximum. Experimental observations of plot B were analyzed using one-dimensional (ID) and two-dimensional (21)) single-porosity model (SPM) and mobile-immobile model (MIM) approaches. All SPM and MIM parameters were obtained from independent measurements, except for the calibrated MIM water and solute transfer coefficients. Water flow and Br- transport were then predicted for the A and C plots using the model parameters as obtained for plot B. Measured plateau-like Br- concentrations could only be consistently calibrated (plot 13) and predicted (A and Q using the 2D-MIM approach, while the 1D-MIM, 2D-SPM, and 1D-SPM approaches (in this order) increasingly deviated from the experimental data. The MIM simulations suggested that solute transfer into the immobile region represented more than 60% of the surface applied Br-. Non-equilibrium transport with advective and diffusive mass transfer increased early mass loss and entailed extended, slower leaching as compared to equilibrium transport. Furthermore, model simulations suggested that the two-dimensional flow field as induced by tile drains enhanced Br- dispersion and accelerated Br- appearance in the drain. This study showed that both the variably-saturated 2D flow field and physical non-equilibrium transport should be explicitly accounted for in physically based model simulations of solute transport in tile-drained structured field soils. (c) 2005 Elsevier B.V. All rights reserved.
机译:系统地瓷砖排水的田地被公认为是农用化学品污染地表水的主要来源之一。为了研究瓷砖排水和物理非平衡对结构化土壤中溶质运移的影响,在三个不同的排水深度(128、101、96 cm,A,B,Q)上进行了溴化物(Br-)运输实验)和Infeld实验现场地点(德国西北部)的间距(16、18和12 m),在半年的时间内对瓷砖排水量以及Br-浓度进行了监测。对于所有三个地块,Br-均快速突破在实验过程中观察到Br浓度在6 mg / L以下波动,并且没有明显的最大浓度波动。使用一维(ID)和二维(21)单孔模型分析了B区的实验观察结果( SPM)和移动固定模型(MIM)方法。除校准的MIM水和溶质转移系数外,所有SPM和MIM参数均从独立测量获得。然后使用从曲线B获得的模型参数来预测A和C曲线的水流量和Br-运移。只能对测量的高原样Br-浓度进行一致的校准(曲线13)并进行预测(使用2D的A和Q) -MIM方法,而1D-MIM,2D-SPM和1D-SPM方法(按此顺序)越来越偏离实验数据,MIM模拟表明溶质转移到固定区域占表面的60%以上与平流相比,平流和扩散传质的非平衡迁移增加了早期质量损失,浸出时间延长,浸出较慢,而且模型模拟表明,由瓷砖排水管引起的二维流场增强了Br-。该研究表明,应在物理场中明确考虑可变饱和二维流场和物理非平衡输运基于y的瓷砖排水结构化土壤中溶质运移的模型模拟。 (c)2005 Elsevier B.V.保留所有权利。

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