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3D Laboratory-Scale SoilBed for Assessment of Fate and Transport of Explosive-Related Compounds in Soils Under Variable Environmental Conditions

机译:在可变环境条件下评估爆炸性化合物在土壤中的命运和运输的3D实验室规模土壤床

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This paper presents the development and testing of a three-dimensional laboratory-scale soil tank system for modeling ERC fate and transport under controlled, but variable environmental conditions in partially saturated soil. The system incorporates a rainfall simulator, variable light (visible and UV), temperature and relative humidity components, and a 3D SoilBed capable of simulating several boundary and initial conditions. Experimental work indicate that water and solute transport is highly influenced by interrelated environmental and boundary conditions. The presence of light and higher system temperatures induces greater water drainage and solute fluxes. During infiltration, hydraulic heads increase at faster rates under no light exposure suggesting greater water and solute retention. The spatial and temporal distribution of hydraulic heads during rainfall events is not uniform and flow patterns reflect preferential paths. Transport of conservative solutes closely follows water flow patterns, and reflects the influence of variable and interrelated environmental factors on spatial and temporal concentration distribution. These experiments show that interrelated environmental factors must be taken into account to accurately predict the distribution of chemicals near the soil-atmosphere surface. They demonstrate that non-reactive solutes are highly influenced by variation in hydraulic, advective, and dispersive processes induced by changes in environmental conditions. Greater impacts are expected for reactive and semi-volatile solutes such as ERCs. In such case, fate and transport will also be affected by variations in soptive, gas transport, and degradation processes.
机译:本文介绍了三维模拟实验室规模的土壤储罐系统的开发和测试,该系统可在部分饱和土壤中受控但可变的环境条件下模拟ERC的命运和运输。该系统集成了降雨模拟器,可变光(可见光和紫外线),温度和相对湿度成分,以及能够模拟多个边界条件和初始条件的3D土壤床。实验工作表明,水和溶质的运移受到相互关联的环境和边界条件的高度影响。光照和较高的系统温度会导致更大的排水量和溶质通量。在渗透过程中,在没有光照的情况下,水压头会以更快的速度增加,这表明水和溶质的保留更大。降雨事件期间液压头的时空分布不均匀,流量模式反映了优先路径。保守性溶质的运输紧随水流模式,并反映了变量和相关环境因素对时空浓度分布的影响。这些实验表明,必须考虑相互关联的环境因素,以准确预测土壤-大气表面附近化学物质的分布。他们证明,非反应性溶质受环境条件变化引起的水力,对流和分散过程变化的强烈影响。预计对反应性和半挥发性溶质(如ERC)的影响会更大。在这种情况下,命运,运输也将受到吸附剂,气体运输和降解过程变化的影响。

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