降雨入渗下不同坡度黄土斜坡失稳破坏的水槽实验研究

    EXPERIMENTAL STUDY ON INSTABILITY FAILURE OF LOESS SLOPES WITH DIFFERENT SLOPE ANGLES UNDER RAINFALL INFILTRATION USING FLUME TESTS

    • 摘要: 降雨诱发滑坡是黄土地区一种常见的地质灾害,其发生机制与黄土斜坡坡度关系密切。基于室内水槽模型实验系统,开展了4组不同坡度(25°、30°、35°、40°)的均质黄土斜坡模型实验,探究了不同坡度下黄土斜坡降雨入渗与整体失稳破坏的过程。结果表明:(1)坡度对黄土斜坡降雨入渗响应特征影响明显,坡度越大,雨水对斜坡的溅蚀作用越显著,坡肩区域变形破坏越明显,坡面侵蚀破坏则越滞后,斜坡变形破坏过程可分为坡表侵蚀及坡脚破坏、冲沟发育扩展、蠕滑-局部破坏以及整体失稳等4个阶段;(2)持续性降雨作用下,不同坡度斜坡内部孔隙水压力、土压力随坡体侵蚀、裂缝发展以及局部变形破坏的波动变化明显;(3)斜坡坡度大于30°时,湿润锋运移速率随着坡度的增大而逐渐降低,30°斜坡的降雨入渗速率与土中水分的滞留能力耦合最好,土体抗剪强度降低最快,更容易诱发滑坡;(4)斜坡坡度增加,斜坡后部土体的临界体积含水率也随着增加,40°斜坡失稳前的临界体积含水率较25°斜坡高约19%;(5)滑坡体的倾斜变形主要受控于滑体沿滑带的剪切滑移或旋转运动,斜坡失稳前的土体变形量由表及里逐渐减少,中上层土体在较大坡度下的剪切滑移行为最为显著,斜坡失稳时底部倾角的变化幅度与坡度呈负相关。

       

      Abstract: Rainfall-induced landslides represent a frequent geological hazard in loess regions, with their triggering mechanisms closely linked to slope gradient. Using an indoor flume model test system, four homogeneous loess slope models with gradients of 25°, 30°, 35°, and 40°were constructed to study rainfall infiltration processes and instability mechanisms under different slope angles. The results indicate that: (1)Slope gradient significantly influences rainfall infiltration response: steeper slopes exhibit more pronounced rainwater splash erosion, clearer deformation at the slope shoulder, and relatively delayed surface erosion damage. The deformation and failure process can be divided into four stages: surface erosion and toe failure, gully development and expansion, creep sliding and local failure, and overall instability. (2)Under continuous rainfall, pore water pressure and earth pressure inside slopes of different gradients show noticeable fluctuations corresponding to slope erosion, crack development, and local deformation. (3)When the slope angle exceeds 30°, the wetting front migration rate gradually decreases with increasing slope steepness. At 30°, the rainfall infiltration rate couples most effectively with the soil′s water retention capacity, and the shear strength decreases most rapidly, making landslide initiation most likely. (4)As slope angle increases, the critical volumetric water content at the rear of the slope also rises. Before failure, the critical volumetric water content for a 40°slope is approximately 19% higher than that for a 25°slope. (5)Landslide tilting deformation is mainly controlled by shear slip or rotational movement along the slip surface. Prior to failure, soil deformation decreases gradually from the surface inward. Shear sliding behavior in the middle-upper soil layers is most pronounced at steeper slopes, and the change in basal inclination angle during failure is negatively correlated with slope gradient.

       

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