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Determining Hydraulic Conductivity for Air-Filled Porosity in an Unsaturated Frozen Soil by the Multistep Outflow Method

机译:多步流出法测定非饱和冻土中气孔孔隙的水力传导率

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Accurate simulation of snowmelt infiltration and runoff in frozen soil is important for many environmental and engineering issues in cold regions. It is well known that infiltration in frozen soil is dramatically reduced due to the impedance of ice crystals; however, it is very often inaccurately predicted because of limited data to parameterize the related processes. In this study, the hydraulic conductivity K(h) for air-filled porosity in an unsaturated frozen soil was investigated by employing a multistep pressurized outflow method using antifreeze liquid. Comparisons of water flow in both partially frozen and unfrozen soils indicated that frozen soil significantly reduced K(h) due to the blocking effects of ice crystals. Based on one common K(h)-based hydraulic equation, an impedance parameter for liquid-filled porosity was extended to an apparent impedance parameter for air-filled porosity. The apparent impedance factor Ωa is about 4 ranging from 0.5 to 6.5 as a function of matric potential. These findings represent significant new progress for estimation of Ωa by an experimental method that can be used for the estimation of snowmelt infiltration. We suggest that the current applied measurement method should be used and further evaluated for a variety of soil types.
机译:对于寒冷地区的许多环境和工程问题,准确模拟冻土中融雪的渗透和径流非常重要。众所周知,由于冰晶的阻抗,冰冻土壤中的渗透大大减少了。但是,由于对相关过程进行参数化的数据有限,因此经常会预测不准确。在这项研究中,通过采用防冻液的多步加压流出法,研究了非饱和冻土中充填气孔的水力传导率K(h)。比较部分冷冻和未冷冻土壤中的水流,发现由于冰晶的阻挡作用,冷冻土壤显着降低了K(h)。基于一个常见的基于K(h)的水力方程,将充液孔隙度的阻抗参数扩展为充气孔隙度的视在阻抗参数。视在阻抗因数Ωa约为4,范围从0.5到6.5,是矩阵电势的函数。这些发现代表了通过实验方法估算Ωa的重要新进展,该方法可用于估算融雪的入渗量。我们建议应使用当前应用的测量方法,并对各种土壤类型进行进一步评估。

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    《Vadose Zone Journal》 |2013年第1期|p.1-10|共10页
  • 作者单位

    aDep. of Biological and Environmental Engineering, Graduate School of Agricultural and Life Sciences, Univ. of Tokyo, 1-1-1, Yayoi, Bunkyo-ku, Tokyo bState Key Lab. of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A&F Univ., Yangling 712100, China cDep. of Environmental Science and Technology, Univ. of Maryland, College Park, MD 20742;

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