人民长江 ›› 2022, Vol. 53 ›› Issue (6): 141-145.doi: 10.16232/j.cnki.1001-4179.2022.06.020

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滑坡体渗透性原位试验与反演研究

郑洁;王晋荣;王菁莪   

  • 发布日期:2022-08-09

Study on permeability of landslide mass by in-situ test and numerical inversion

ZHENG Jie1,2,WANG Jinrong2, WANG Jing’e2   

  • Published:2022-08-09

摘要: 为测试三峡库区黄土坡滑坡临江1号滑坡体的水力传导函数,提出了一种基于钻孔原位渗流试验与数值反演相结合的测试及计算方法。该方法通过流量阀控制钻孔底部排水速度,同时获取排水流速与孔内水位随时间变化的数据,并以此数据作为边界条件和目标函数,采用有限元方法,基于Van Genuchten-Mualem模型对原位试验过程进行数值反演,最终获得滑体物质水力传导函数的模型参数。测试与反演结果表明:该滑坡体内稳定地下水位在孔底以上4.75 m处,钻孔周围地下水的补给速度为0.24 m3/h。反演所得模型参数反映滑体物质较破碎,颗粒级配不均匀,整体饱和渗透系数为7.54×10-4 cm/s,与钻孔注水试验测试结果接近。非饱和状态的渗透系数受含水率影响显著,当饱和度降低至50%时,渗透系数即降低一个数量级。

关键词: 滑坡;渗透性;原位试验;数值反演;水力传导函数;

Abstract: In order to test the hydraulic conductivity function of the Huangtupo No.1 riverside landslide in the Three Gorges Reservoir area, a method for measuring and calculating the permeability of sliding body based on the combination of in-situ seepage test and numerical back analysis was proposed. The drainage velocity and water level data with time was obtained by discharging water with different flow rates from the bottom borehole using flow valve. And the data was then used as boundary conditions and objective functions to numerically invert the Van Genuchten-Mualem model parameters which define the hydraulic conductivity function of the sliding material. The test results showed that the stable groundwater level in the landslide was 4.75 m above the bottom of the borehole, and the recharge rate of the groundwater around the borehole was 0.24 m3/h. The model parameters obtained from the inversion indicated that the sliding material was relatively fragmentized and the grain gradation was not uniform. The saturated overall permeability was 7.54×10-4 cm/s, which was close with the result of borehole injection tests. The permeability coefficient under the unsaturated state was significant influenced by the water content, which was reduced by an order of magnitude when saturation was reduced to 50%.

Key words: landslide; permeability; in-situ test; numerical inversion; hydraulic conductivity function