Rock and Soil Mechanics ›› 2024, Vol. 45 ›› Issue (8): 2492-2501.doi: 10.16285/j.rsm.2023.1461

• Numerical Analysis • Previous Articles     Next Articles

Simulation of saturated sand site liquefaction based on the CFD-DEM method

XU Wen-hao1, 2, WANG Zhi-hua1, 2, SHEN Zhi-fu1, 2, GAO Hong-mei1, 2, LIU Yin-qiang1, 2, ZHANG Xin-lei1, 2   

  1. 1. Institute of Geotechnical Engineering, Nanjing Tech University, Nanjing, Jiangsu 211816, China; 2. Jiangsu Province Engineering Research Center of Transportation Infrastructure Security Technology, Hohai University, Nanjing, Jiangsu 211816, China
  • Received:2023-09-26 Accepted:2023-12-21 Online:2024-08-10 Published:2024-08-12
  • Supported by:
    This work was supported by the General Program of National Natural Science Foundation of China (51678300, 52178336, 52108324), the Major Research Project in Natural Sciences for Higher Education Institutions of Jiangsu Province (18KJA560002), the Young Academic Leader in the “Qinglan Project” of Universities in Jiangsu Province and the Jiangsu Provincial Graduate Research and Practice Innovation Program (KYCX22_1354).

Abstract: Soil liquefaction is a prevalent seismic hazard. However, current indoor and model experiments studying the dynamic characteristics of sand liquefaction struggle to accurately represent the actual soil liquefaction process. The computational fluid dynamics (CFD) coupled with discrete element method (DEM) simulation method can accurately simulate various soil-water coupling problems. The CFD-DEM flow-solid coupling module facilitated the exchange of mechanical information between the commercial discrete element software PFC3D and the open-source computational fluid dynamics software OpenFOAM. The feasibility of this approach was confirmed through particle underwater free settling experiments. Calibration of numerical sand specimens with dynamic characteristics of real saturated sand was conducted using PFC3D software through simulated indoor cyclic triaxial tests. Based on the existing parameter information and the coupled simulation method, a site liquefaction model of saturated sand was established. The simulation results indicate that the discrete element method (DEM) can replicate indoor sand liquefaction experiments, and the calibrated parameters can be applied to site liquefaction simulations. The consistency between the settling velocity of individual particles and theoretical solutions validates the accuracy of the CFD-DEM coupling method. Under a peak acceleration of 0.25g, liquefaction occurs at various depths, and the ratio of excess pore pressure does not exceed 1 during liquefaction. The cumulative excess pore pressure increases from shallow layers to deep layers. After liquefaction, the soil strength gradually recovers from bottom to top, and the soil structure in the re-consolidated site shows a trend of homogenization.

Key words: soil liquefaction, CFD-DEM coupling method, particle free settling, site liquefaction simulation

CLC Number: 

  • TU 43
[1] 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.
[2] WU Hong, YE Zhi, ZHANG Yu-ting, LIU Hua-bei, . Numerical study on seismic behavior of shield tunnel crossing saturated sandy strata with different densities [J]. Rock and Soil Mechanics, 2023, 44(4): 1204-1216.
[3] FU Hai-qing, YUAN Xiao-ming, WANG Miao,. An incremental model of pore pressure for saturated sand based on in-situ liquefaction test [J]. , 2018, 39(5): 1611-1618.
[4] GONG Feng-qiang , LI Jia-wei,. Discrimination model of sandy soil liquefaction based on PCA-DDA principle and its application [J]. , 2016, 37(S1): 448-454.
[5] KONG Meng-yun , CHEN Guo-xing , LI Xiao-jun , CHANG Xiang-dong , ZHOU Guo-liang,. Shear wave velocity and peak ground acceleration based deterministic and probabilistic assessment of seismic soil liquefaction potential [J]. , 2015, 36(5): 1239-1252.
[6] CHEN Guo-xing ,GU Xiao-feng ,CHANG Xiang-dong ,LI Xiao-jun ,ZHOU Guo-liang,. Review and implication of successful ground improvement cases about mitigating soil liquefaction induced by 8 strong earthquakes from 1989 to 2011 [J]. , 2015, 36(4): 1102-1118.
[7] WANG Liang-min, YE Jian-hong, ZHU Chang-qi. Investigation on the wave-induced progressive liquefaction of offshore loosely deposited sandy seabed [J]. , 2015, 36(12): 3583-3588.
[8] CHEN Guo-xing ,KONG Meng-yun ,LI Xiao-jun ,CHANG Xiang-dong ,ZHOU Guo-liang,. Deterministic and probabilistic triggering correlations for assessment of seismic soil liquefaction at nuclear power plant [J]. , 2015, 36(1): 9-27.
[9] FANG Huo-lang ,ZHANG Yi-qun ,GUO Jing ,YIN Ge . Elastoplastic seismic response analysis of earth dam on deep sandy alluviums [J]. , 2013, 34(11): 3197-3204.
[10] CHEN Guo-xing , JIN Dan-dan , CHANG Xiang-dong , LI Xiao-jun , ZHOU Guo-liang . Review of soil liquefaction characteristics during major earthquakes in recent twenty years and liquefaction susceptibility criteria for soils [J]. , 2013, 34(10): 2737-2755.
[11] YANG Xiao, HE Guang-hui. Nonlinear analysis of single pile-soil system in lateral spreading liquefied soil [J]. , 2012, 33(7): 2189-2195.
[12] ZHENG Jie-wen , JIA Yong-gang , LIU Xiao-lei , SHAN Hong-xian , YANG Zhong-nian ,. Discrepancy of sediment erodibility variation under waves at Yellow River delta [J]. , 2011, 32(S1): 290-0296.
[13] YAN Ke-zhen, LIU Neng-yuan, XIA Tang-dai. Discriminant analysis model for prediction of sand soil liquefaction during earthquake [J]. , 2009, 30(7): 2049-2052.
[14] ZHONG Jia-yu, ZHENG Yong-lai, NI Yin. Experimental study of response pattern of pore water pressure on sandy seabed under wave action [J]. , 2009, 30(10): 3188-3193.
[15] ZHONG Xiao-chun, LIU Han-long, YU Xiang-juan, GAO Yu-feng. Distinguishing liquefaction characteristics of foundations around subway tunnel [J]. , 2003, 24(2): 266-269.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!