Rock and Soil Mechanics ›› 2023, Vol. 44 ›› Issue (6): 1837-1848.doi: 10.16285/j.rsm.2022.1053

• Numerical Analysis • Previous Articles     Next Articles

Mechanism of liquefaction-induced lateral spreading in liquefiable inclined sites

JIA Ke-min1, XU Cheng-shun1, DU Xiu-li1, ZHANG Xiao-ling1, SONG Jia1, 2, SU Zhuo-lin1   

  1. 1. Key Laboratory of Urban Security and Disaster Engineering of the Ministry of Education, Beijing University of Technology, Beijing 100124, China; 2. School of Civil Engineering, North China University of Technology, Beijing 100144, China
  • Received:2022-07-06 Accepted:2022-10-26 Online:2023-06-14 Published:2023-06-17
  • Supported by:
    This work was supported by the General Program of National Natural Science Foundation of China (52078016), the National Natural Science Foundation for Outstanding Young Scholars of China (51722801) and the General Program of Beijing Natural Science Foundation (8192012).

Abstract: A numerical model of the liquefaction horizontal free-field shaking table test was developed based on the completed large-scale shaking table test of liquefaction horizontal free field using the OpenSees finite element platform, and the numerical model was verified. Based on this, a free-field numerical model of the overall inclined foundation was established, and the non-cyclic dynamic response of the liquefaction lateral spreading site and the mechanism of liquefaction-induced lateral spreading were discussed. The results show that the established numerical model can effectively simulate the seismic response in liquefiable sites. There was significant relative displacement at the interface between liquefiable loose sand and overlying non-liquefiable layer. In the inclined site, the strain accumulation of saturated sand soil starts from the upper part of the loose sand layer and gradually develops downward. The increase of excess pore water pressure was not completely coupled with the accumulation of non-cyclic strain of the soil. The non-cyclic lateral displacement was controlled by the middle parts of the site. In the process of soil liquefaction, when the shear stress along the sliding surface is less than the initial static shear stress, lateral spreading starts, and the shear stress ratio of the saturated loose sand layer is in the range of 0.04−0.06, which is slightly smaller than the initial static shear stress ratio. In addition, it is found that liquefaction-induced lateral spreading requires a certain site inclination (greater than 0.5º). The lateral displacement of soil conforms to the cosine distribution pattern. With the increase of site inclination, the contribution of liquefiable deep soil to the overall lateral displacement is more significant.

Key words: liquefaction, lateral spreading, free filed, numerical simulation, seismic response, mechanism, shaking table test

CLC Number: 

  • TU411.93
[1] SUN Chuang, LAN Si-qi, TAO Qi, GUAN Xi-bin, HAN Xi-ping. Upper bound analysis of three-dimensional progressive collapse mechanism of deep tunnel roof with weak surrounding rock [J]. Rock and Soil Mechanics, 2023, 44(9): 2471-2484.
[2] LI Yao, LI Jia-ping, . Multi-directional cyclic simple shear behaviour of loose sand under complex initial stress states [J]. Rock and Soil Mechanics, 2023, 44(9): 2555-2565.
[3] WANG Zhi-ying, GUO Ming-zhu, ZENG Jin-yan, WANG Chen, LIU Huang. Experimental study on dynamic response of bedding rock slope with weak interlayer under earthquake [J]. Rock and Soil Mechanics, 2023, 44(9): 2566-2578.
[4] YANG Zheng-tao, QIN You, WU Qi, , CHEN Guo-xing, . Influence of cyclic loading frequency on liquefaction behaviors of saturated coral sand [J]. Rock and Soil Mechanics, 2023, 44(9): 2648-2656.
[5] WANG Xiao-lei, LIU Li-teng, LIU Run, LIU Li-bo, DONG Lin, REN Hai. Shaking table test study on the influence of seismic history on liquefaction resistance of soils at different depths [J]. Rock and Soil Mechanics, 2023, 44(9): 2657-2666.
[6] QIAO Ya-fei, , YAN Kai, , ZHAO Teng-teng, DING Wen-qi, . Characteristics and mechanism of soil heave at the bottom of ultra-deep circular shafts in soft soil areas [J]. Rock and Soil Mechanics, 2023, 44(9): 2707-2716.
[7] ZENG Zhao-tian, CUI Zhe-qi, SUN De-an, YAO Zhi, PAN Bin, . Temperature effect on water retention capacity of Nanning expansive soil and its microscopic mechanism [J]. Rock and Soil Mechanics, 2023, 44(8): 2177-2185.
[8] JIAN Tao, KONG Ling-wei, BAI Wei, SHU Rong-jun, . Dynamic pore pressure model for saturated loess based on dissipative energy [J]. Rock and Soil Mechanics, 2023, 44(8): 2238-2248.
[9] WANG Yong-guang, LIANG Jian-wen, BA Zhen-ning, . A dynamic nonlinear constitutive model for soil based on modified damping and its implementation in Abaqus [J]. Rock and Soil Mechanics, 2023, 44(8): 2287-2296.
[10] LI Wen-wei, ZHAN Xin-jie, WANG Bao-tian, ZHU Qun-feng, XU Xiao-long, ZUO Jin-yu, WANG Jia-hui, . Meso-mechanism of rolling dynamic compaction to reinforce loose landslide dam material [J]. Rock and Soil Mechanics, 2023, 44(8): 2297-2307.
[11] LU Qin-wu, GUAN Zhen-chang, LIN Lin, WU Shu-jing, SONG De-jie. Lining- tratum interaction mechanism of mountain tunnel based on static pushover model test [J]. Rock and Soil Mechanics, 2023, 44(8): 2318-2326.
[12] ZHANG Kun-yong, ZHANG Meng, SUN Bin, LI Fu-dong, JIAN Yong-zhou, . A calculation method for deformation of diaphragm wall of narrow deep foundation pit in soft soil considering spatio-temporal effect [J]. Rock and Soil Mechanics, 2023, 44(8): 2389-2399.
[13] XIONG Chao, HUANG Zhong-wei, WANG Li-chao, SHI Huai-zhong, HE Wen-hao, CHEN Zhen-liang, LI Gen-sheng. Rock breaking characteristics and mechanism of conical polycrystalline diamond compact cutter [J]. Rock and Soil Mechanics, 2023, 44(8): 2432-2444.
[14] SHEN Hui, LIU Ya-qun, LIU Bo, LI Hai-bo, . Numerical study on the amplification effect of rock slopes under oblique incidence of seismic waves [J]. Rock and Soil Mechanics, 2023, 44(7): 2129-2142.
[15] YU Yang, WANG Ze-hua, TANG Cai-xuan. Energy evolution and fractal characteristics of acid corroded granite under uniaxial compression [J]. Rock and Soil Mechanics, 2023, 44(7): 1971-1982.
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] XU Jin-ming, QIANG Pei, ZHANG Peng-fei. Texture analysis of photographs of silty clay[J]. , 2009, 30(10): 2903 -2907 .
[3] XIANG Tian-bing, FENG Xia-ting, CHEN Bing-rui, JIANG Quan, ZHANG Chuan-qing. Rock failure mechanism and true triaxial experimental study of specimens with single structural plane under three-dimensional stress[J]. , 2009, 30(10): 2908 -2916 .
[4] SHI Yu-ling, MEN Yu-ming, PENG Jian-bing, HUANG Qiang-bing, LIU Hong-jia. Damage test study of different types structures of bridge decks by ground-fissure[J]. , 2009, 30(10): 2917 -2922 .
[5] XIA Dong-zhou, HE Yi-bin, LIU Jian-hua. Study of damping property and seismic action effect for soil-structure dynamic interaction system[J]. , 2009, 30(10): 2923 -2928 .
[6] XU Su-chao, FENG Xia-ting, CHEN Bing-rui. Experimental study of skarn under uniaxial cyclic loading and unloading test and acoustic emission characteristics[J]. , 2009, 30(10): 2929 -2934 .
[7] ZHANG Li-ting, QI Qing-lan, WEI Jing HUO Qian, ZHOU Guo-bin. Variation of void ratio in course of consolidation of warping clay[J]. , 2009, 30(10): 2935 -2939 .
[8] ZHANG Qi-yi. Study of failure patterns of foundation under combined loading[J]. , 2009, 30(10): 2940 -2944 .
[9] YI Jun, JIANG Yong-dong, XUAN Xue-fu, LUO Yun, ZHANG Yu. A liquid-solid dynamic coupling modelof ultrasound enhanced coalbed gas desorption and flow[J]. , 2009, 30(10): 2945 -2949 .
[10] TAO Gan-qiang, YANG Shi-jiao, REN Feng-yu. Experimental research on granular flow characters of caved ore and rock[J]. , 2009, 30(10): 2950 -2954 .