ISSN 1009-6248CN 61-1149/P 双月刊

主管单位:中国地质调查局

主办单位:中国地质调查局西安地质调查中心
中国地质学会

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    冻融作用下硫酸盐渍土土水特性及微观机理研究

    Study on Soil-Water Characteristics and Micro-Mechanism of Sulfate Saline Soil under Freeze-Thaw Action

    • 摘要: 为研究硫酸盐盐渍土在冻融作用下的土水特性及微观机理,测试了不同含盐量下盐渍土的土水特征曲线,用Gardner模型、van-Genuchten模型和Fredlund-Xing模型进行拟合,并分析冻融作用下硫酸盐渍土的微观结构及孔隙分布特征。研究结果表明:硫酸盐渍土体积含水率均随基质吸力的增加而减小,其曲线均呈单峰反“S”型,相同体积含水率下,含盐量越高基质吸力越大;冻融循环作用可促进土体的微观结构崩解,导致大孔隙体积及孔隙率增加,冻融循环后土样基质吸力和体积含水率降低,土水特征曲线随冻融循环次数增加整体向左偏移。G模型、V-G模型和F-X模型与盐渍土试验结果对比显示,F-X模型拟合相关系数较低,V-G模型在高吸力和低吸力阶段的拟合度较差,G模型整体拟合效果良好。冻融作用下,土样微观结构发生变异是引起土样持水特性降低的关键因素,在冻融和盐分作用下试样中孔隙和裂隙逐渐发育对水分平衡迁移起到促进作用。

       

      Abstract: In order to study the soil-water characteristics and micro-mechanism of sulfate saline soil under freeze-thaw-salt coupling, the soil-water characteristic curves of saline soil with different salt content were tested and fitted with Gardner model, van-Genuchten model, and Fredlund-Xing model, and the microstructure and pore distribution characteristics of sulfate saline soil under freeze-thaw-salt coupling were analyzed. The results indicate that the volumetric water content of sulfate-salted soil decreases as matrix suction increases, with the resulting curves exhibiting a single-peak inverse ‘S’ shape. Notably, for a given volumetric water content, higher salt concentrations correspond to increased matrix suction. Freeze-thaw cycles promote the microstructural disintegration of the soil, leading to an increase in large pore volume and overall porosity. Following these cycles, both the matrix suction and volumetric water content of the soil samples decreased, causing the soil-water characteristic curve to shift leftward with an increasing number of freeze-thaw cycles.To evaluate the test results of saline soil, the G model, V-G model, and F-X model were employed. The F-X model exhibited a low fitting correlation coefficient, while the V-G model demonstrated poor fitting in both high and low suction phases. In contrast, the G model provided an overall good fitting performance. The microstructural changes in soil samples resulting from freeze-thaw actions are critical factors contributing to the reduction of the soil's water-holding capacity. The progressive development of pores and fissures in the samples, influenced by freezing, thawing, and salinity, facilitates the migration of water equilibrium.

       

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