利用AHFO和BOTDA技术表征水-脱水影响下土壤水分分布和运动

Cao Dingfeng, B. Shi, Hong-hu Zhu, C. Tang, Song Zhanpu, Wei Guangqing, A. Garg
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引用次数: 3

摘要

水在非饱和土中的入渗和分布决定了非饱和土的力学和水文特性。然而,很少有方法可以准确地捕捉土壤内部水分的空间分布。本研究旨在展示利用主动加热光纤(AHFO)和布里渊光时域分析(BOTDA)技术监测土壤水分分布和应变分布。除了实验室模型试验外,还进行了有限元分析来解释测量结果。在试验过程中,还测量了细颗粒迁移量,以了解其对土壤导水性的影响。实验结果表明:(1)对于从未经历过水-脱水循环的土壤,可以用Richards方程精确地计算水分入渗;(2)水-脱水循环引起的土壤细粒迁移显著提高了水导率;(iii)两个关键区域(排水和侵蚀)在决定整个土壤的整体水力导电性方面起着重要作用。该研究为监测土壤水分、应变和导电性的变化提供了一种新的方法。研究结果表明,在评价土壤水分分布和水分运动时,应考虑细颗粒迁移的影响。
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Characterization of Soil Moisture Distribution and Movement Under the Influence of Watering-dewatering Using AHFO and BOTDA Technologies
The infiltration and distribution of water through unsaturated soil determine its mechanical and hydrological properties. However, there are few methods that can accurately capture the spatial distribution of moisture inside soil. This study aims to demonstrate the use of actively heated fiber optic (AHFO) and Brillouin optical time domain analysis (BOTDA) technologies for monitoring soil moisture distribution as well as strain distribution. In addition to a laboratory model test, finite element analyses were conducted to interpret the measurements. During the experiment, the fine particle migration was also measured to understand its influence on soil hydraulic conductivity. The results of the experiment indicate that (i) for a soil that has never experienced a watering-dewatering cycle, water infiltration can be accurately calculated using the Richards’ equation; (ii) migration of fine soil particles caused by the watering-dewatering cycle significantly increases the hydraulic conductivity; and (iii) two critical zones (drainage and erosion) play significant roles in determining the overall hydraulic conductivity of the entire soil. This study provides a new method for monitoring the changes in soil moisture, soil strain, and hydraulic conductivity. The observations suggest that the effect of fine particles migration should be considered while evaluating soil moisture distribution and water movement.
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