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Simultaneous measurement of unfrozen water content and ice content in frozen soil using gamma ray attenuation and TDR

机译:使用伽马射线衰减和TDR同时测量冷冻土壤中的冻土含水量和冰含量

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摘要

The freezing temperature of water in soil is not constant but varies over a range determined by soil texture. Consequently, the amounts of unfrozen water and ice change with temperature in frozen soil, which in turn affects hydraulic, thermal, and mechanical properties of frozen soil. In this paper, an Am-241 gamma ray source and time-domain reflectometry (TDR) were combined to measure unfrozen water content and ice content in frozen soil simultaneously. The gamma ray attenuation was used to determine total water content. The TDR was used to determine the dielectric constant of the frozen soil. Based on a four-phase mixing model, the amount of unfrozen water content in the frozen soil could be determined. The ice content was inferred by the difference between total water content and unfrozen water content. The gamma ray attenuation and the TDR were both calibrated by a gravimetric method. Water contents measured by gamma ray attenuation and TDR in an unfrozen silt column under infiltration were compared and showed that the two methods have the same accuracy and response to changes of water content. Unidirectional column freezing experiments were performed to apply the combined method of gamma ray attenuation and TDR for measuring unfrozen water content and ice content. The measurement error of the gamma ray attenuation and TDR was around 0.02 and 0.01 m(3)/m(3), respectively. The overestimation of unfrozen water in frozen soil by TDR alone was quantified and found to depend on the amount of ice content. The higher the ice content, the larger the overestimation. The study confirmed that the combined method could accurately determine unfrozen water content and ice content in frozen soil. The results of soil column freezing experiments indicate that total water content distribution is affected by available pore space and the freezing front advance rate. It was found that there is similarity between the soil water characteristic and the soil freezing characteristic of variably saturated soil. Unfrozen water content is independent of total water content and affected only by temperature when the freezing point is reached.
机译:土壤中水的冷冻温度不是恒定的,但在土壤质地确定的范围内变化。因此,冷冻土壤温度下来水和冰变化的量,又影响了冷冻土壤的液压,热和力学性能。本文将AM-241γ射线源和时域反射率(TDR)组合以同时测量冷冻土壤中的含水含量和冰含量。使用γ射线衰减来确定总水含量。 TDR用于确定冷冻土壤的介电常数。基于四相混合模型,可以确定冷冻土壤中的未冷却水含量的量。通过总水含量和未冷却的含水量之间的差异推断出冰含量。 Gamma射线衰减和TDR均通过重量法校准。在渗透下的γ射线衰减和TDR测量的水含量并显示出两种方法具有相同的准确性和对水含量变化的响应。进行单向柱冷冻实验以应用γ射线衰减和TDR的组合方法测量未冷却的水含量和冰含量。 γ射线衰减和TDR的测量误差分别为0.02%和0.01μm(3)/ m(3)。量化TDR单独冻土中的未冷却水的高估,发现依赖于冰含量的量。冰含量越高,高估越大。该研究证实,组合方法可以准确地确定冷冻土壤中的含水含量和冰含量。土壤柱冷冻实验结果表明,总水含量分布受可用孔隙空间和冷冻前进率的影响。发现土壤水分特征与可变饱和土壤的土壤冻结特性之间存在相似性。未冷冻的含水量与总水含量无关,并且在达到冷冻点时才受温度影响。

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  • 来源
    《Water resources research》 |2014年第12期|9630-9655|共26页
  • 作者单位

    Swiss Fed Inst Technol Inst Environm Engn Zurich Switzerland;

    Chinese Acad Sci Cold & Arid Reg Environm & Engn Res Inst Lanzhou Peoples R China;

    Swiss Fed Inst Technol Inst Environm Engn Zurich Switzerland;

    Swiss Fed Inst Technol Inst Environm Engn Zurich Switzerland;

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