Quantitative characterization and simulation of soil moisture distribution in heterogeneous vadose zone
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摘要: 摘要:【目的】包气带作为连接植被与地下水的重要纽带,其岩性结构是影响地下水生态功能的主要因子之一,为了探究包气带岩性结构如何影响土壤含水量分布,【方法】设计了均质土柱(O),单薄层状土柱(A),单厚夹层土柱(B)以及双夹层土柱(C)四个土柱,开展了室内层状非均质土柱释水实验和入渗实验,探究土壤水分下渗时水分运移及剖面分布规律,重点研究了细粒土夹层上方毛细水带的形成机制与水量分布;依据物理实验开展了变饱和水流数值模拟,探究了更为准确预测层状非均质土体中含水量剖面的模拟方法。【结果】实验过程中,细粒土夹层结构导致水分在夹层内部和夹层上下界面处滞留,形成了水分聚集区;相较于O柱,A柱、B柱和C柱释水过程持续时长分别增加了290h、500h和780h,持水量分别增加了6.20cm,7.90cm和7.83cm;其中A柱、B柱和C柱夹层中及夹层界面处滞留的水量分别占总持水量的24.50%、33.09%、45.77%和3.19%、5.01%、11.38% ;数值模拟结果表明采用修正后的van Genuchten模型能更好地模拟层状土含水量剖面。【结论】细粒土夹层对入渗水下移特征会产生明显阻滞效应,水分主要滞留在夹层内部和夹层上下界面处,夹层厚度、层数增多会导致夹层内和夹层界面处均滞留更多水分,通过引入虚拟变量和毛细高度修正van Genuchten模型,并将其对应的相对渗透率方程分为三段式,可有效提升层状土壤含水量剖面模拟精度。Abstract: Abstract::[Objective] The vadose zone, as a crucial linkage between vegetation and groundwater, plays a significant role in influencing groundwater ecological functions. Among the various factors, lithological structure stands out as one of the primary factors affecting groundwater ecological functions. In order to investigate how the lithological structure of the vadose zone influences soil moisture distribution, [Methods] laboratory experiments were conducted on layered heterogeneous soil columns to investigate water release and infiltration. The distribution patterns of water movement during soil moisture infiltration, particularly the formation mechanism and distribution of capillary fringe above the fine-grained soil layer, were analyzed. Additionally, a comparative analysis was performed on the coupling of three commonly used Soil Water Characteristic Curve (SWCC) models with the Richards model. Based on this analysis, modifications were made to the simulation methods to better simulate water distribution in layered heterogeneous soils. [Results] During the experiment, the fine-grained soil interlayer structure causes water retention in the interlayer and at the upper and lower interfaces of the interlayer, forming a water accumulation area. Compared with column O, the water release duration of column A, column B and column C increased by 290h, 500h and 780h, respectively, and the water holding capacity increased by 6.20cm, 7.90cm and 7.83cm, respectively. The water retention in the interlayer of column A, column B and column C and at the interlayer interface accounted for 24.50%, 33.09%, 45.77% and 3.19%, 5.01% and 11.38% of the total water retention, respectively. The numerical simulation results show that the modified van Genuchten model can better simulate the layered soil moisture profile. [Conclusion] Fine-grained soil interlayer has a significant retarding effect on the underwater migration characteristics of infiltration, and water is mainly retained inside the interlayer and at the upper and lower interfaces of the interlayer. The increase in the thickness and number of interlayers will lead to more water retention inside the interlayer and at the interlayer interface. The corresponding relative permeability equation is divided into three stages, which can effectively improve the simulation accuracy of layered soil water content profile.
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Key words:
- layered heterogeneity /
- soil moisture distribution /
- numerical simulation
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