Rock and Soil Mechanics ›› 2024, Vol. 45 ›› Issue (1): 131-140.doi: 10.16285/j.rsm.2023.0171

• Fundamental Theroy and Experimental Research • Previous Articles     Next Articles

Progressive failure mechanism of embedded strain sensing cable-frozen soil interface

LIU Tian-xiang1, ZHU Hong-hu1, 2, WU Bing1, LI Hao-jie1, HU Le-le1   

  1. 1. School of Earth Sciences and Engineering, Nanjing University, Nanjing, Jiangsu 210023, China; 2. Institute of Earth Exploration and Sensing, Nanjing University, Nanjing, Jiangsu 210023, China
  • Received:2023-02-18 Accepted:2023-05-26 Online:2024-01-10 Published:2024-01-10
  • Supported by:
    This work was supported by the National Science Fund for Distinguished Young Scholars of China (42225702), the National Natural Science Foundation of China (42077235) and the Open Fund of State Key Laboratory of Frozen Soil Engineering (SKLFSE201814).

Abstract: The deformation of foundation soil caused by freeze-thaw cycles is a typical geological disaster in engineering construction in permafrost areas. Fiber optic sensing technology provides an important technical means for accurate and distributed real-time monitoring of frozen soil deformation. To explore the feasibility of distributed fiber optic strain sensing in monitoring frozen soil deformation, this study utilized a self-developed optical cable-frozen soil interface mechanical characteristics tester to investigate the failure mechanism of the cable-soil interface in frozen soil samples with different dry densities and initial water contents. The experimental results indicate that the fiber optic strain monitoring results accurately reflect the progressive failure characteristics of the cable-soil interface, and the strain softening model can better describe the mechanical properties of the interface. During the freezing process, the liquid water in the soil becomes ice, causing the movement of the freezing front and water migration, and resulting in significant differences in the mechanical properties of the interface. The evolution process of the shear stress at the cable-soil interface at different depths reflects the deformation coordination state with the frozen soil during the cable pullout process, indicating that the measurement range of the cable and the coupling of the interface are closely related to the dry density and initial water content of the soil. This study provides a reference for the application of optical fiber sensing technology in deformation monitoring of frozen soil foundation in cold regions.

Key words: geotechnical engineering monitoring, frost heave effect, fiber optic cable-frozen soil interface, progressive failure, distributed fiber optic sensing technology

CLC Number: 

  • TU 445
[1] BAO Han, CHEN Zhi-yang, LAN Heng-xing, PEI Run-sheng, WU Fa-quan, YAN Chang-gen, TAO Yue, . Progressive failure strength characteristics of anisotropic rocks caused by mineral directional arrangement: a case of biotite quartz schist [J]. Rock and Soil Mechanics, 2022, 43(8): 2060-2070.
[2] LU Ying-fa, HU Peng, ZHONG Yao, ZHANG Yu-fang, JIANG Jun-jie, . Control design based on progressive failure characteristics of slope: taking Budaiying slope in Shiyan city, Hubei province as an example [J]. Rock and Soil Mechanics, 2022, 43(8): 2277-2286.
[3] ZHANG Zhen, ZHANG Zhao, YE Guan-bao, WANG Meng, XIAO Yan, CHENG Yi, . Progressive failure mechanism of stiffened deep mixed column-supported embankment [J]. Rock and Soil Mechanics, 2020, 41(6): 2122-2131.
[4] WANG Wei, CHEN Guo-qing, ZHENG Shui-quan, ZHANG Guang-ze, WANG Dong, . Study on the vector sum method of slope considering tensile-shear progressive failure [J]. Rock and Soil Mechanics, 2019, 40(S1): 468-476.
[5] LI Shi-jun, MA Chang-hui, LIU Ying-ming, HAN Yu-zhen, ZHANG Bin, ZHANG Ga, . Centrifuge model tests and numerical simulation on progressive failure behavior of slope above a mine-out area [J]. Rock and Soil Mechanics, 2019, 40(4): 1577-1583.
[6] ZHANG Long-fei, WU Yi-ping, MIAO Fa-sheng, LI Lin-wei, KANG Tian. Mechanical model and stability analysis of progressive failure for thrust-type gently inclined shallow landslide [J]. Rock and Soil Mechanics, 2019, 40(12): 4767-4776.
[7] YANG Li-ping. Analysis of progressive failure of a loess landslide [J]. , 2018, 39(7): 2591-2598.
[8] YANG Zhong-min, GAO Yong-tao, WU Shun-chuan, ZHOU Yu, . Physical model test on large deformation mechanism and key treatment techniques of tunnel [J]. Rock and Soil Mechanics, 2018, 39(12): 4482-4492.
[9] PENG Shuai, ZHANG Xi-wei, FENG Xia-ting, CAI Ming, . Deformation behavior of Jinping marble under isotropic compression and deviatoric stress loading conditions [J]. , 2017, 38(12): 3532-3539.
[10] TAN Fu-lin, HU Xin-li, ZHANG Yu-ming, HE Chun-can, ZHANG Han. Study of progressive failure processes and stabilities of different types of landslides [J]. , 2016, 37(S2): 597-606.
[11] XUE Hai-bin , DANG Fa-ning , YIN Xiao-tao , LEI Man , YANG Chao,. Progressive failure characteristics of slopes considering strain-softening behavior of geotechnical materials and dynamics [J]. , 2016, 37(8): 2238-2246.
[12] GAO Jun-cheng , GUO Ying , JIA Jin-qing , TU Bing-xiong,. Progressive failure behavior of saturated fine sand based on digital image measuring system [J]. , 2016, 37(5): 1343-1350.
[13] WANG Wei , LI Xue-hao , HU Da-wei , CAO Ya-jun , . Permeability evolution of brittle rock in progressive failure process under triaxial compression [J]. , 2016, 37(10): 2761-2768.
[14] SHEN Hua-zhang, WANG Shui-lin, GUO Ming-wei, GE Xiu-run. A preliminary study of the progressive failure and stability of slope with strain-softening behaviour [J]. , 2016, 37(1): 175-184.
[15] XIE Xin-yu , FENG Xiang , WU Xiao-ming,. Reliability analysis of progressive failure of strain softening slope [J]. , 2015, 36(S2): 679-684.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] YAO Yang-ping, HOU Wei. Basic mechanical behavior of soils and their elastoplastic modeling[J]. , 2009, 30(10): 2881 -2902 .
[2] HUANG Run-qiu, XU De-min. Volume change method for testing rock or rock mass permeability[J]. , 2009, 30(10): 2961 -2964 .
[3] LI Lei, ZHU Wei, LIN Cheng, T. OHKI. Study of wet and dry properties of solidified sludge[J]. , 2009, 30(10): 3001 -3004 .
[4] GUO Jun-hui, CHEN Wei-guo, ZHANG Bin. Research on creep property of geogrids at a low temperature[J]. , 2009, 30(10): 3009 -3012 .
[5] KANG Hou-rong, LEI Ming-tang, ZHANG Xie-dong, ZHAO Jie-hua. Karst environment zoning for highway engineering of Guizhou Province[J]. , 2009, 30(10): 3032 -3036 .
[6] YANG Kun, ZHOU Chuang-bing WANG Tong-xu. Risk analysis of dam slope under external random multi-loadings[J]. , 2009, 30(10): 3057 -3062 .
[7] WU Zhen-jun, WANG Shui-lin, GE Xiu-run. Slope reliability analysis by random FEM under constraint random field[J]. , 2009, 30(10): 3086 -3092 .
[8] YAN Tian-you, LI Tong-chun, ZHAO Lan-hao, JI Wei-wei. Elastoplastic finite element iteration method for stability analysis of three-dimensional slope[J]. , 2009, 30(10): 3102 -3108 .
[9] ZHANG Jia-fa, DING Pei-zhong, ZHANG Wei, HU Zhi-jing. Studies of permeability and seepage deformation characteristics of cushion material for Shuibuya Concrete Faced Rockfill Dam[J]. , 2009, 30(10): 3145 -3150 .
[10] JIANG Xiao-wei, WAN Li, WANG Xu-sheng, WU Xiong, CHENG Hui-hong. Estimation of depth-dependent hydraulic conductivity and deformation modulus using RQD[J]. , 2009, 30(10): 3163 -3167 .