Mechanical Characters of Anti-Sliding Piles of Landslide with Double Sliding Zones Based on Finite Difference Method
-
摘要: 目前,抗滑桩的变形与内力计算理论多针对单层滑带滑坡,而三峡库区大部分堆积层滑坡发育双层滑带. 鉴于此,考虑双层滑带滑坡的物质组成差异,构建了双层滑带滑坡-抗滑桩相互作用概化模型,提出了双层滑移条件下的滑坡推力计算方法,基于地基系数法和有限差分原理推导了双层滑带滑坡中抗滑桩受力特征的计算公式. 之后,以马家沟滑坡为工程案例,采用数值模拟方法研究了双层滑带滑坡的推力分布规律,并对理论计算方法进行了验证. 结果表明,该计算方法能很好的反映双层滑带滑坡滑移特征,桩身的变形与内力分布具有明显的规律:桩身位移沿桩顶往下逐渐减小,伴有一定反弯现象;桩身剪力和弯矩具有两个极大值和一个极小值,剪力极大值位于滑面处,弯矩极大值位于滑面下方2~3 m,极小值位于深层滑体内. 滑坡推力分布形式和抗滑桩设计参数是影响桩体受力特征的重要因素. 该方法可为双层滑带滑坡的抗滑桩设计提供理论依据.Abstract: Existing theoretical analysis of the deformation and internal force of anti-sliding piles are mostly designed for single-sliding zone landslides, while most of the accumulation layer landslides in the Three Gorges reservoir area develop double sliding zones. Considering the difference in material composition of landslides with double sliding zones, a generalized model for the interaction between landslides with double sliding zones and anti-sliding is constructed. to study the internal force and deformation of anti-sliding piles. Then a calculation method of landslide thrust under double-layer sliding condition is proposed to derive the equations of deformation and internal force of anti-slide pile in landslides with double sliding zones based on the foundation coefficient method and the finite difference principle. Numerical simulation method was used to research the distribution laws of landslide thrust and verify the newly proposed approach via the Majiagou landslide as example. The results of the theoretical and numerical simulation methods well show the sliding characteristics of landslides with double sliding zones. Meanwhile, the distribution of the deformation and internal forces show a great regularity: the displacement of the pile decreases gradually from the top to bottom accompanied by reverse bending phenomenon, the shear force and bending moment of the pile exist two maximum values and one minimum value, and the maximum values of the shear force are located at the sliding surface while the maximum values of the bending moment are located 2~3 m below the sliding surface, and the minimum value is located in the deep sliding body. In addition, the distribution of landslide thrust and the vital design parameters of anti-sliding piles are important factors that affect the mechanical characteristics of the pile. The proposed method can provide a theoretical reference for the design of anti-sliding piles of landslide with double sliding zones.
-
表 1 滑坡推力分布函数
Table 1. Distribution functions of landslide-thrust
滑坡岩土类型 滑坡推力分布形式 a b 滑坡推力分布函数 岩石 矩形或平行四边形 0 0 $ q\left(z\right)=\frac{{E}_{n}}{{h}_{1}} $ 松散介质(砂土) 三角形 0 2 $ q\left(z\right)=\frac{2{E}_{n}z}{{{h}_{1}}^{2}} $ 介于砂土和粘土 梯形 0 12ζ-6 $ q\left(z\right)=\frac{(12\zeta -6){E}_{n}}{{{h}_{1}}^{2}}z+\frac{(4-6\zeta){E}_{n}}{{h}_{1}} $ 粘土 抛物线形 36ζ-24 18-24ζ $ q\left(z\right)=\frac{(36\zeta -24){E}_{n}}{{{h}_{1}}^{3}}{z}^{2}+\frac{(18-24\zeta){E}_{n}}{{{h}_{1}}^{2}}z $ 表 2 滑坡岩土体物理力学参数
Table 2. Physical and mechanical parameters of rock and soil
材料类型 密度(kg/m3) 黏聚力(kPa) 内摩擦角(°) 体积模量(MPa) 剪切模量(MPa) 浅层滑体(碎石土) 2 110 35 27 905 611 深层滑体(砂质泥岩) 2 450 45 42 9 506 6 310 滑床(砂岩) 2 500 70 50 15 000 10 000 浅层滑带土 2 110 11 14 75 32 深层滑带土 2 230 12 15 84 45 表 3 物理力学参数组合
Table 3. Combination of physical and mechanical parameters
参数滑带 黏聚力(kPa) 内摩擦角(°) 体积模量(MPa) 剪切模量(MPa) 参数1 S1 11 14 75 32 S2 12 15 84 45 参数2 S1 13 16 150 70 S2 12 15 84 45 参数3 S1 9.5 12 40 15 S2 12 15 84 45 参数4 S1 11 14 75 32 S2 14 17 160 90 参数5 S1 11 14 75 32 S2 10 14 40 25 表 4 推力特征值对比
Table 4. Characteristic value of landslide thrust comparison
P0(kPa) P1(kPa) ζ1 P0’ (kPa) P2(kPa) ζ2 参数1 111.3 190.1 0.54 40.2 482.3 0.64 参数2 1.2 191.5 0.66 15.6 506.7 0.66 参数3 89.7 206.3 0.57 55.5 386.5 0.63 参数4 97.8 217.2 0.56 52.4 389.8 0.63 参数5 44.1 192.7 0.60 10.4 501.2 0.66 -
Dai, Z. H., 2002. Study on Distribution Laws of Landslide-Thrust and Resistance of Sliding Mass Acting on Antislide Piles. Chinese Journal of Rock Mechanics and Engineering, 21(4): 517-521(in Chinese with English abstract). Dai, Z. H., Peng, Z. B., 2002. Finite Difference Method Based on "M-K" Method for Calculation of Internal Forces of a Whole Stabilizing Pile. Rock and Soil Mechanics, 23(3): 321-324, 328(in Chinese with English abstract). Dai, Z. H., Shen, P. S., Peng, Z. B., 2003. A New Mode for Calculating Internal Forces of Stabilizing Pile. China Civil Engineering Journal, 36(4): 99-104(in Chinese with English abstract). Dong, M. M., Wang, L. Q., Ge, Y. F., et al., 2017. Mechanical Characteristics of Anti-Sliding Pile Considering Comprehensive Foundation Coefficient of Sliding Bed on Composite Inclined Rock Mass. Rock and Soil Mechanics, 38(10): 3000-3008(in Chinese with English abstract). Gui, S. Q., 2005. Design Method for Using Stabilizing Piles with Pre-Stressed Anchored Cables in Landslide Remediation Works. Earth Science, 30(2): 233-240(in Chinese with English abstract). Gui, S. Q., Yin, K. L., Luo, P., 2003. A Study on Applications of Stabilizing Piles with Pre-Stressed Anchor Cables in Landslides Remediation Works. Rock and Soil Mechanics(S2): 239-243, 248(in Chinese with English abstract). He, K. Q., 1998. An Analysis on the Multilayered Slide Law of the Large-Scale Accumulative Landslides. Metal Mine(7): 15-18(in Chinese with English abstract). Hu, X. L., Tan, F. L., Tang, H. M., et al., 2017. In-Situ Monitoring Platform and Preliminary Analysis of Monitoring Data of Majiagou Landslide with Stabilizing Piles. Engineering Geology, 228: 323-336. https://doi.org/10.1016/j.enggeo.2017.09.001 Ito, T., Matsui, T., 1975. Methods to Estimate Lateral Force Acting on Stabilizing Piles. Soils and Foundations, 15(4): 43-59. https://doi.org/10.3208/sandf1972.15.4_43 Li, C. D., Wu, J. J., Tang, H. M., et al., 2016. Model Testing of the Response of Stabilizing Piles in Landslides with Upper Hard and Lower Weak Bedrock. Engineering Geology, 204: 65-76. https://doi.org/10.1016/j.enggeo.2016.02.002 Lin, S. S., Liao, J. C., 2006. Lateral Response Evaluation of Single Piles Using Inclinometer Data. Journal of Geotechnical and Geoenvironmental Engineering, 132(12): 1566-1573. https://doi.org/10.1061/(asce)1090-0241(2006)132:12(1566) Liu, D. Z., Hu, X. L., Zhou, C., et al., 2020. Model Test Study of a Landslide Stabilized with Piles and Evolutionary Stage Identification Based on Thermal Infrared Temperature Analysis. Landslides, 17(6): 1393-1404. https://doi.org/10.1007/s10346-020-01355-0 Li, S. L., Xu, Q., Tang, M. G., et al., 2020. Study on Spatial Distribution and Key Influencing Factors of Landslides in Three Gorges Reservoir Area. Earth Science, 45(1): 341-354(in Chinese with English abstract). Li, Y., Yan, E. C., Li, Z. C., 2008. Research on Real-Time Stability of Hongshibao Landslide in Badong of the Three Gorges Reservoir Area. Rock and Soil Mechanics, 29(S1): 412-416(in Chinese with English abstract). Ni, W. D., Tang, H. M., Hu, X. L., et al., 2013. Research on Deformation and Stability Evolution Law of Huangtupo Riverside Slump-Mass No. Ⅰ. Rock and Soil Mechanics. 34(10): 2961-2970(in Chinese with English abstract). Qian, T. H., Xia, W. C., Chao, Z. G., et al., 2011. A Calculation Approach for Frame Anti-Sliding Piles. Earth Science, 36(6): 1143-1148(in Chinese with English abstract). Su, A. J., Huo, X., Wang, J. T., et al., 2018. Three-Section Method for Calculating Internal Force and Deformation of Cantilevered Anti-Slide Pile. Chinese Journal of Geotechnical Engineering, 40(3): 512-519(in Chinese with English abstract). Wang, C. T., Wang, H., Zhang, Y. F., et al., 2020. Model Test and Numerical Simulation Study on the Mechanical Characteristics of The Anchored Slide-Resistant Pile For Stabilizing The Colluvial Landslide. Rock and Soil Mechanics, 41(10): 3343-3354(in Chinese with English abstract). Wang, G. H., Li, C. D., Chen, W. Q., et al, 2019. Mechanical Characteristics of Anchored Slide-Resistant Piles Under the Condition of Composite Multilayer Sliding Bed. Chinese Journal of Rock Mechanics and Engineering, 38(11): 2219-2230(in Chinese with English abstract). Wu, R. Z., Zhou, H. Q., Hu, Y., et al., 2015. An Improved Method for Calculating Anti-Sliding Pile with Prestressed Anchor Cable Based on Finite Difference Theory. Rock and Soil Mechanics, 36(6): 1791-1800(in Chinese with English abstract). Yang, D. F., Hu, X. L., Xu, C., et al, 2021. Model Test on the Deformation Evolution Characteristics of Landslide with Multiple Sliding Zone. Bulletin of Geological Science and Technology, 41(2): 300-308(in Chinese with English abstract). Yang, H. F., Xing, B. C., Jiang, H., et al., 2022. Analogical Model Tests on Repeated Surficial Failure of Dry Granular Slopes Confined by Retaining Walls. Frontiers in Earth Science, 10: 973205(in Chinese with English abstract). doi: 10.3389/feart.2022.973205 Yang, Y. F., Xu, S. Q., 2003. Finite Difference "K-K" Method of Calculation of Anchor-Stabilizing Piles. Rock and Soil Mechanics, 24(1): 61-64(in Chinese with English abstract). Zhan, H. Z., Wang, L. Q., Wang, C. S, et al., 2014. Study of Mechanical Characters of Anti-Sliding Piles Considering Different Foundation Coefficients of Sliding Bed. Rock and Soil Mechanics, 35(S2): 250-256(in Chinese with English abstract). Zhang, J. H., Hu, X. L., Xu, C., et al., 2021. Mechanical Characteristics of Anti-Slide Pile of Multi-Layer Sliding Zone Accumulation Layer Based on Physical Model Test. Bulletin of Geological Science and Technology, 40(4): 171-178(in Chinese with English abstract). Zheng, Y. R., Zhao, S. Y., 2004. Application of Strength Reduction FEM in Soil and Rock Slope. Chinese Journal of Rock Mechanics and Engineering, 23(19): 3381-3388(in Chinese with English abstract). Zhou, C., Yin, K. L., Cao, Y., et al., 2020. Landslide Susceptibility Assessment by Applying the Coupling Method of Radial Basis Neural Network and Adaboost: A Case Study from the Three Gorges Reservoir Area. Earth Science, 45(6): 1865-1876(in Chinese with English abstract). 戴自航, 2002. 抗滑桩滑坡推力和桩前滑体抗力分布规律的研究. 岩石力学与工程学报, 21(4): 517-521. 戴自航, 彭振斌, 2002. 抗滑桩全桩内力计算"M-K"法的有限差分法. 岩土力学, 23(3): 321-324, 328. 戴自航, 沈蒲生, 彭振斌, 2003. 弹性抗滑桩内力计算新模式及其有限差分解法. 土木工程学报, 36(4): 99-104. 董曼曼, 王亮清, 葛云峰, 等, 2017. 考虑滑床复合倾斜岩体综合地基系数的抗滑桩受力特征研究. 岩土力学, 38(10): 3000-3008. 桂树强, 2005. 预应力锚索抗滑桩结构计算方法. 地球科学, 30(2): 233-240. 桂树强, 殷坤龙, 罗平, 2003. 预应力锚索抗滑桩治理滑坡应用研究. 岩土力学(S2): 239-243, 248. 贺可强, 1998. 大型堆积层滑坡的多层滑移规律分析. 金属矿山(7): 15-18. 李松林, 许强, 汤明高, 等, 2020. 三峡库区滑坡空间发育规律及其关键影响因子. 地球科学, 45(1): 341-354. doi: 10.3799/dqkx.2017.576 李英, 晏鄂川, 李作成, 2008. 三峡库区巴东红石包滑坡稳定性动态分析. 岩土力学, 29(S1): 412-416. 倪卫达, 唐辉明, 胡新丽, 等, 2013. 黄土坡临江Ⅰ号崩滑体变形及稳定性演化规律研究. 岩土力学, 34(10): 2961-2970. 钱同辉, 夏文才, 朝泽刚, 等, 2011. 考虑空间协同作用框架式抗滑桩的计算方法. 地球科学, 36(6): 1143-1148. doi: 10.3799/dqkx.2011.120 苏爱军, 霍欣, 王杰涛, 等, 2018. 悬臂式抗滑桩内力计算的"三段法". 岩土工程学报, 40(3): 512-519. 王成汤, 王浩, 张玉丰, 等, 2020. 锚索抗滑桩加固堆积型滑坡的受力特性模型试验与数值模拟研究. 岩土力学, 41(10): 3343-3354. 王贵华, 李长冬, 陈文强, 等, 2019. 复合多层滑床条件下锚索抗滑桩受力特征研究. 岩石力学与工程学报, 38(11): 2219-2230. 吴润泽, 周海清, 胡源, 等, 2015. 基于有限差分原理的预应力锚索抗滑桩改进计算方法. 岩土力学, 36(6): 1791-1800. 杨登芳, 胡新丽, 徐楚, 等, 2022. 基于物理模型试验的多层滑带滑坡变形演化特征. 地质科技通报, 41(2): 300-308. 杨虎锋, 邢本聪, 蒋虎, 等, 2022. 挡墙限制型散粒体斜坡堆积特征模型试验. 地球科学, 47(3): 974-986. 杨佑发, 许绍乾, 2003. 锚索抗滑桩内力计算的有限差分"K-K"法. 岩土力学, 24(1): 61-64. 詹红志, 王亮清, 王昌硕, 等, 2014. 考虑滑床不同地基系数的抗滑桩受力特征研究. 岩土力学, 35(S2): 250-256. 张杰豪, 胡新丽, 徐楚, 等, 2021. 基于物理模型试验的多层滑带堆积层滑坡-抗滑桩受力特征. 地质科技通报, 40(4): 171-178. 郑颖人, 赵尚毅, 2004. 用有限元强度折减法求滑(边)坡支挡结构的内力. 岩石力学与工程学报, 23(20): 3552-3558. 周超, 殷坤龙, 曹颖, 等, 2020. 基于集成学习与径向基神经网络耦合模型的三峡库区滑坡易发性评价. 地球科学, 45(6): 1865-1876. doi: 10.3799/dqkx.2020.071 -




下载: