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首页> 外文期刊>Journal of Contaminant Hydrology >Evaluation of air permeability in layered unsaturated materials
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Evaluation of air permeability in layered unsaturated materials

机译:层状不饱和材料的透气性评估

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Field estimation of air permeability is important in the design and operation of soil-vapor extraction systems. Previous models have examined airflow in homogenous soils, incorporating leakage through a low-permeability cap either as a correction to the airflow equation or as a boundary condition. The dual leakage model solution developed here improves upon the previous efforts by adding a leaky lower boundary condition, allowing for the examination of airflow in heterogeneous layered soils. The dual leakage model is applied to the evaluation of pump tests at a pilot soil-vapor extraction system at the Savannah River Site in South Carolina. A thick, low-permeability, stiff clay layer divides the stratigraphy at the site into two units for evaluation. A modified version of the previous model, using the water table as the impermeable lower boundary, is used to evaluate the permeability of the low-permeability stiff clay layer (3.2 x 10~(-10) cm~2) and permeable sand (7.2 x 10~(-7) cm~2) beneath it. The stiff clay permeability estimate is used in the evaluation of the shallow unit. Permeability estimates of the shallow sand (3.8 x 10~(-7) cm~2) and kaolin cap (1.5 x 10~(-9) cm~2) were obtained with the dual leakage model. The shallow unit was evaluated using the previous model for comparison. The effects of anisotropy were investigated with a series of model simulations based on the shallow unit solution. The anisotropy sensitivity analysis suggests that increased anisotropy ratio or decreased axial permeability has a significant impact on the velocity profile at the lower boundary, especially at high values of the anisotropy ratio. This result may increase estimates of SVE removal rates for contaminants located at the interface of the lower boundary, typical of chlorinated solvent contamination.
机译:透气性的现场估算对于土壤-蒸汽提取系统的设计和运行非常重要。以前的模型已经检查了均质土壤中的气流,并结合了通过低渗透率帽的泄漏,作为对气流方程的修正或作为边界条件。此处开发的双重泄漏模型解决方案通过添加泄漏下边界条件对先前的工作进行了改进,从而可以检查非均质层状土壤中的气流。将双重泄漏模型应用于南卡罗来纳州萨凡纳河站点的试验性土壤-蒸汽提取系统的泵测试评估。厚而低渗透的硬质粘土层将现场的地层分为两个单元进行评估。使用地下水位作为不渗透性下边界的前一个模型的改进版本,用于评估低渗透性硬质粘土层(3.2 x 10〜(-10)cm〜2)和渗透性砂土(7.2)的渗透性x 10〜(-7)cm〜2)。硬质粘土渗透率估算值用于浅层单元的评估中。利用双重泄漏模型获得了浅砂(3.8 x 10〜(-7)cm〜2)和高岭土盖(1.5 x 10〜(-9)cm〜2)的渗透率估计值。使用以前的模型评估浅层单元以进行比较。通过一系列基于浅层单元解的模型模拟研究了各向异性的影响。各向异性敏感性分析表明,各向异性比的增加或轴向渗透率的降低对下边界处的速度分布具有显着影响,尤其是在各向异性比值较高时。该结果可能会增加对位于下边界界面的污染物的SVE去除率的估计,这是典型的氯化溶剂污染。

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