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Controlled Irrigation to Estimate Field-Scale Hydraulic Conductivity of a Landfill Final Cover

机译:受控灌溉以估算垃圾填埋场最终盖板的场尺度液压导电性

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Hydraulic conductivity of engineered earthen covers increases over its life due to the formation of macropores. Macropores are formed during construction and service due to shrinkage, desiccation, freeze-thaw cycles, vegetation root growth and death, rodent holes, and worm holes. Field-scale test section of a compacted clay cover was constructed to investigate the changes in its hydraulic properties over a four year period. Saturated hydraulic conductivity was measured in laboratory on compacted samples and in the field immediately after the test section was constructed. Irrigation tests were used to evaluate transient changes in the hydraulic conductivity. Two irrigation tests, first during the first year and the second during the fourth year after the construction of the test section were carried out. The effective field hydraulic conductivities were calculated using the measured percolation rate in the lysimeter assuming steady-state flow and a unit downward gradient. The effective field hydraulic conductivity calculated after the second irrigation test was about nine times the effective field hydraulic conductivity of the compacted clay measured during the first year.
机译:由于宏观孔的形成,工程师覆盖器的液压导电性增加了它的生命。由于收缩,干燥,冷冻解冻循环,植被根生长和死亡,啮齿动物孔和蜗壳,在建造和服务期间形成大孔。构建压实粘土盖的现场刻度试验部,以研究其液压性能的变化在四年内。在测试部分构建后,在实验室在实验室中测量饱和液压导电性。使用灌溉测试来评估液压导电性的瞬态变化。两次灌溉测试,首先在第一年和第四年内进行试验部分后的第二年。假设稳态流动和单位向下梯度,使用Lysimeter中的测量渗流速率计算有效的液压传导率。第二灌注试验后计算的有效现场液压导电性约为第一年测量的压实粘土的有效现场液压导电性的九倍。

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