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首页> 外文期刊>European Journal of Soil Science >Analysing the preferential transport of lead in a vegetated roadside soil using lysimeter experiments and a dual-porosity model
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Analysing the preferential transport of lead in a vegetated roadside soil using lysimeter experiments and a dual-porosity model

机译:用溶渗仪和双孔隙率模型分析路边植被中铅的优先迁移

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摘要

Lead (Pb) from the traffic accumulates in roadside soils, which are usually vegetated to control erosion. Plants release soluble organic substances that bind Pb. Root macropores also create preferential pathways through which water can flow. Both these processes may enhance Pb mobility. We used large lysimeters to investigate the transport of Pb in a contaminated (445 mg Pb kgp#) soil under vegetation (Phacelia tanacetifolia). Despite the high soil pH (7.2), Pb leached into the drainage water during the 5-month experiment. The fast response of the system to intense rainfall events indicated the presence of preferential flow. By comparing Pb concentrations in filtered and unfiltered leachates, we found that Pb was leaching primarily on suspended material. An increase in Pb concentration in the leachate at the end of the experiment indicated the remobilization of Pb, possibly by decaying vegetation. We parameterized the dual-porosity MACRO model using the experimental results. The simple parameterization of MACRO used to simulate the Pb concentrations in the drainage water produced an overall model efficiency of 0.81: MACRO simulated the Pb concentrations well, but it failed to predict the observed increase of Pb in the leachate at the end of the experiment. The model gave the best prediction of Pb concentrations with a small partition coefficient (kd= 150 cmpd gp#). Long-term simulations of Pb mobility showed that for our specific conditions preferential flow was the main process determining the fate of Pb.
机译:交通中的铅(Pb)积累在路旁土壤中,通常将其植被化以控制侵蚀。植物释放与铅结合的可溶性有机物质。根大孔也创造了水可流动的优先途径。这两个过程均可增强Pb的迁移率。我们使用大型溶渗仪研究了植被(Phacelia tanacetifolia)下受污染的(445 mg Pb kgp#)土壤中Pb的迁移。尽管土壤的pH值很高(7.2),但在5个月的实验过程中,Pb还是渗入了排水中。系统对强降雨事件的快速响应表明存在优先流量。通过比较过滤和未过滤渗滤液中铅的浓度,我们发现铅主要在悬浮物上浸出。实验结束时渗滤液中铅的浓度增加表明铅的迁移,可能是由于植被腐烂。我们使用实验结果对双孔MACRO模型进行了参数化。用于模拟排水中Pb浓度的MACRO的简单参数设置产生了0.81的总体模型效率:MACRO很好地模拟了Pb浓度,但未能预测实验结束时渗滤液中Pb的增加。该模型以较小的分配系数(kd = 150 cmpd gp#)给出了对Pb浓度的最佳预测。铅迁移率的长期模拟表明,对于我们的特定条件,优先流动是决定铅命运的主要过程。

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