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降雨作用下鄂西山区麻池村1号滑坡变形破坏过程试验

王赟,  陈菲菲,  沈颜参,  杨涛,  陈梦源,  李喜,  章广成

王赟,陈菲菲,沈颜参,等. 降雨作用下鄂西山区麻池村1号滑坡变形破坏过程试验[J]. 地质科技通报,2026,45(5):1-18 doi: 10.19509/j.cnki.dzkq.tb20250271
引用本文: 王赟,陈菲菲,沈颜参,等. 降雨作用下鄂西山区麻池村1号滑坡变形破坏过程试验[J]. 地质科技通报,2026,45(5):1-18 doi: 10.19509/j.cnki.dzkq.tb20250271
WANG Yun,CHEN Feifei,SHEN Yanshen,et al. Experimental study on deformation and failure process of No. 1 landslide in Machi Village under rainfall conditions in mountainous area of western Hubei[J]. Bulletin of Geological Science and Technology,2026,45(5):1-18 doi: 10.19509/j.cnki.dzkq.tb20250271
Citation: WANG Yun,CHEN Feifei,SHEN Yanshen,et al. Experimental study on deformation and failure process of No. 1 landslide in Machi Village under rainfall conditions in mountainous area of western Hubei[J]. Bulletin of Geological Science and Technology,2026,45(5):1-18 doi: 10.19509/j.cnki.dzkq.tb20250271

降雨作用下鄂西山区麻池村1号滑坡变形破坏过程试验

doi: 10.19509/j.cnki.dzkq.tb20250271
基金项目: 国家自然科学基金项目(U2340230);湖北省重点研发计划项目(2023BCB117)
详细信息
    作者简介:

    王赟:E-mail:wangyun1@cug.edu.cn

    通讯作者:

    E-mail:zhangguangc@cug.edu.cn

  • 中图分类号: P642.22;TU457

Experimental study on deformation and failure process of No. 1 landslide in Machi Village under rainfall conditions in mountainous area of western Hubei

More Information
  • 摘要:

    鄂西山区广泛发育大规模堆积层滑坡,坡体变形演化与降雨时空分布高度关联。为揭示堆积层滑坡变形特征及其演化过程对降雨模式的响应规律,确定滑坡稳定性对各因素的敏感程度,选取十堰市典型堆积层滑坡——麻池村1号滑坡为例,采用物理模型试验探究前锋、中锋、平锋和后锋4种降雨雨型作用下滑坡的演化过程;采用正交试验和方差分析辨识影响滑坡稳定性的主控因素。研究结果表明:①4种降雨雨型对滑体土孔隙水压力的影响主要体现在孔隙水压力峰值出现时间随雨峰位置的变化,雨峰越靠前,峰值出现的时间越早。其次,后峰型降雨所导致的滑坡破坏区域相对较大,致灾效应较强。②在各种类型降雨条件下,边坡模型主要从中部开始变形,先发生蠕变,再到阶跃式变形直至边坡完全破坏。③正交试验方差分析表明,影响麻池村1号滑坡整体稳定性的敏感因素由大到小依次为:内摩擦角φ >黏聚力c >累计降雨量T >渗透系数Ks >滑带土容重γ >降雨雨型Q。滑带土的黏聚力c与内摩擦角φ是评估滑坡稳定性的关键抗剪强度参数。④对于滑坡前缘局部来说,渗透系数Ks是影响稳定性的重要因素,而对滑坡整体而言,累计降雨量T更为关键。麻池村1号滑坡属降雨诱发前缘牵引式滑坡,其中后峰型降雨致灾效应最强,本研究基于现象观测、变形破坏探究、关键参数分析的完整分析方法可信度高,所得的结果具有较高可靠性与适用性,研究成果可为鄂西山区同类滑坡监测与灾害应急处置提供理论支撑。

     

  • 图 1  麻池村1号滑坡地理位置

    Figure 1.  Geographic location of No. 1 landslide in Machi Village

    图 2  麻池村1号滑坡工程地质平面图(a)及剖面图 (b)

    Figure 2.  Engineering geology plan iew (a) and cross-sectional view (b) of No. 1 landslide in Machi Village

    图 3  麻池村1号滑坡变形情况

    Figure 3.  Deformation status of No. 1 landslide in Machi Village

    图 4  麻池村1号滑坡降雨量与累计位移量变化

    Figure 4.  Variation of rainfall and cumulative displacement of No. 1 landslide in Machi Village

    图 5  降雨雨型设计方案

    Figure 5.  Design scheme of rainfall patterns

    图 6  模型试验设计布置

    Figure 6.  Layout design of physical model test

    图 7  主要试验设备

    Figure 7.  Experimental setup

    图 8  不同降雨雨型物理模型试验的坡体变形破坏情况

    Figure 8.  Slope deformation and failure under physical model tests with different rainfall patterns

    图 9  物理模型试验监测点位移变形

    Figure 9.  Displacement deformation at monitoring points of physical model test

    图 10  滑坡体孔隙水压力监测曲线

    Figure 10.  Monitoring curve of pore water pressure in landslide mass

    图 11  滑坡体土压力监测曲线

    Figure 11.  Monitoring curve of earth pressure in landslide mass

    图 12  滑坡整体和前缘工程地质剖面

    Figure 12.  Engineering geological profiles of entire landslide and its front edge

    图 13  不同降雨强度下滑坡区域稳定性系数变化

    Figure 13.  Variation of stability coefficient of landslide area with different rainfall intensities

    图 14  不同降雨历时下滑坡区域稳定性系数变化

    Figure 14.  Variation of stability coefficient of landslide area with different rainfall durations

    图 15  不同降雨雨型下滑坡区域稳定性系数变化

    Figure 15.  Variation of stability coefficient of landslide area under different rainfall patterns

    表  1  麻池村1号滑坡位移变形区间

    Table  1.   Displacement deformation intervals of No. 1 landslide in Machi Village

    时期G4监测点G5监测点G6监测点
    时间段变形阶段位移增量/mm变形速率/(mm·d−1)位移增量/mm变形速率/(mm·d−1)位移增量/mm变形速率/(mm·d−1)
    2019年6月1日—2020年7月1日初始变形12.080.038.080.023.780.01
    2020年7月1日—2020年9月1日第1次变形15.900.2632.780.5568.951.15
    2020年9月1日—2020年10月1日缓慢匀速变形0.990.031.990.077.560.25
    2020年10月1日—2020年11月1日第2次变形3.840.137.070.2426.810.89
    2020年11月1日—2021年7月1日缓慢匀速变形18.990.0819.530.0832.210.13
    2021年7月1日—2021年9月1日第3次变形14.700.2414.370.2482.061.37
    2021年9月1日—2021年11月1日第4次变形864.3014.40926.9015.45858.8014.31
    2021年11月1日—2023年10月1日缓慢匀速变形75.400.1195.070.1491.880.13
    2023年10月1日—2023年11月1日第5次变形52.061.7446.891.56234.507.81
    2023年11月1日—2024年5月1日缓慢匀速变形28.120.1637.400.2142.540.24
    下载: 导出CSV

    表  2  物理模型试验主要相似系数

    Table  2.   Key similarity coefficients of physical model test

    参量 相似常数 比例因子 参量 相似常数 比例因子
    长度 Cl 400 内摩擦角 Cφ 1
    重度 Cγ 1 降雨强度 Cq 1
    黏聚力 Cc 400
    下载: 导出CSV

    表  3  原状土体物理力学性质测试

    Table  3.   Physical and mechanical properties of undisturbed soil

    样品编号 取样深度/m 物理力学性质指标
    含水率w/% 天然密度ρ0/(g·cm−3) 干密度ρd/(g·cm−3) 抗剪强度 土体类型
    黏聚力c/kPa 内摩擦角φ/(°)
    1 2.4~2.6 19.9 2.04 1.70 29.0 18.6 粉质黏土
    2 2.8~3.0 22.9 1.99 1.62 27.0 17.7 粉质黏土
    3 5.2~5.4 20.3 2.04 1.70 28.0 18.5 黏土
    4 3.4~3.6 25.5 1.98 1.58 22.5 16.1 粉质黏土
    5 6.1~6.3 22.3 1.97 1.61 23.3 16.2 粉质黏土
    6 9.5~9.7 20.1 2.90 1.58 26.5 17.7 粉质黏土
    7 1.6~1.8 19.7 1.91 1.60 29.0 18.2 黏土
    8 4.5~4.7 21.9 2.01 1.65 59.0 18.6 黏土
    9 7.4~7.6 23.5 1.87 1.51 22.0 16.5 粉质黏土
    10 2.5~2.7 19.7 1.93 1.61 27.5 18.9 含砾粉质黏土
    11 4.2~4.4 18.9 1.98 1.67 30.2 17.9 粉质黏土
    平均值 21.3 2.09 1.6 26.4 17.7
    下载: 导出CSV

    表  4  滑坡岩土体力学参数

    Table  4.   Geomechanical parameters of landslide soil and rock mass

    饱和含水率/% 残余含水率/% 饱和渗透系数/(m·s−1) 弹性模量/MPa 泊松比 重度/(kN·m−3) 黏聚力/kPa 摩擦角/(°)
    含碎石粉质黏土 25 8 0.00001 30 0.30 20.8 25 26
    粉质黏土软弱夹层 35 10 0.000001 24 0.40 20.8 15 16
    强风化片岩 10 3 5.5×10−6 1000 0.25 26.8 100 30
    中风化片岩 5 1 2.5×10−7 5000 0.15 — — —
    下载: 导出CSV

    表  5  中国降雨等级划分表

    Table  5.   Rainfall intensity classification in China

    降雨等级日降雨量/(mm·d−1)降雨等级日降雨量/(mm·d−1)
    小雨<10暴雨[50, 100)
    中雨[10, 25)大暴雨[100, 250)
    大雨[25, 50)特大暴雨>250
    下载: 导出CSV

    表  6  降雨工况分类

    Table  6.   Classification of rainfall conditions

    工况降雨历时/d降雨量/mm备注
    工况1(降雨强度)37525 mm/d(中雨)
    15050 mm/d(大雨)
    22575 mm/d(暴雨)
    300100 mm/d(暴雨)
    450150 mm/d(大暴雨)
    工况2(降雨历时)530060 mm/d
    743 mm/d
    934 mm/d
    1030 mm/d
    工况3(降雨雨型)3300150∶100∶50
    50∶150∶100
    50∶100∶150
    100∶100∶100
    下载: 导出CSV

    表  7  影响因素水平

    Table  7.   Levels of influencing factors

    参数
    水平
    外部因素 内部因素
    降雨条件 滑体土 滑带土
    降雨
    雨型Q
    累计降雨
    量T/mm
    容重γ/
    (kN·m−3)
    渗透系数
    Ks/(m·s−1)
    黏聚力
    c/kPa
    内摩擦
    角φ/(°)
    1 5∶3∶1 90 17 5×10-6 12 13
    2 1∶5∶3 135 19 1×10-5 15 16
    3 1∶3∶5 180 21 5×10-5 18 19
    4 1∶1∶1 225 23 1×10-4 21 22
    下载: 导出CSV

    表  8  正交设计方案及稳定性系数计算结果

    Table  8.   Orthogonal test design and stability coefficient calculation results

    试验
    序号
    各因素及其参数水平值稳定性系数
    QTγKscφFsFs1
    11111110.6840.580
    21222220.8510.724
    31333331.0620.887
    41444441.2801.047
    52123441.2741.035
    62214331.0660.894
    72341210.7510.642
    82432120.8000.671
    93134241.2160.959
    103243130.9910.794
    113312420.9440.845
    123421310.7860.701
    134142320.9600.788
    144231410.8580.752
    154324141.0700.872
    164413230.9300.808
    171124341.2531.009
    181213431.1030.946
    191342120.8300.684
    201431210.7390.642
    212141220.9040.733
    222232110.6960.592
    232323441.2131.023
    242414331.0220.885
    253113410.9130.804
    263224320.9590.813
    273331230.9680.799
    283442141.0760.861
    294132130.9630.766
    304241241.1380.915
    314314310.8300.692
    324423420.9790.857
      注:Q. 降雨雨型;T. 累计降雨量;γ. 容重;Ks. 渗透系数;C. 黏聚力;φ. 内摩擦角;Fs. 滑坡整体稳定性系数;Fs1. 滑坡前缘稳定性系数;下同
    下载: 导出CSV

    表  9  滑坡整体及前缘稳定性系数方差分析结果

    Table  9.   ANOVA results for stability coefficient of entire landslide and its front edge

    滑坡
    部位
    统计量 影响因子
    Q T γ Ks c φ
    整体 平方和 0.001 0.012 0.009 0.007 0.079 0.313
    自由度 3 3 3 3 3 3
    F 2.69 23.07 16.51 13.91 148.47 590.24
    P 0.089 0 0 0 0 0
    显著性 极显著 极显著 极显著 极显著 极显著
    整体敏感性分析 φ > c > T > Ks > γ > Q
    前缘
    局部
    平方和 0.001 0.001 0 0.002 0.076 0.167
    自由度 3 3 3 3 3 3
    F 1.45 3.51 3.12 6.71 207.07 455.07
    P 0.063 0.046 0.275 0.006 0 0
    显著性 显著 极显著 极显著 极显著
    敏感性分析 φ > c > Ks > T > Q > γ
    下载: 导出CSV
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  • 收稿日期:  2025-06-14
  • 录用日期:  2025-10-14
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