Rock and Soil Mechanics ›› 2024, Vol. 45 ›› Issue (3): 908-916.doi: 10.16285/j.rsm.2023.0464

• Numerical Analysis • Previous Articles     Next Articles

Discrete element method based on three dimensional deformable spheropolyhedra

MAO Jia, YU Jian-kun, SHAO Lin-yu, ZHAO Lan-hao   

  1. College of Water Conservancy and Hydropower Engineering, Hohai University, Nanjing, Jiangsu 210098, China
  • Received:2023-04-13 Accepted:2023-08-03 Online:2024-03-11 Published:2024-03-20
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (52009034), the Science and Technology Project of Water Resources Department of Jiangxi Province (202223YBKT04) and the Cooperative Innovation Center for Water Safety and Hydro Science, Hohai University.

Abstract: In order to simulate the deformation characteristic and motion forms of rock mass, a three-dimensional deformable spheropolyhedral discrete element method is presented, by combining the spheropolyhedral discrete element method (DEM) and the finite element method (FEM). This method effectively captures the irregular characteristics of the block, simplifies contact detection, and provides accurate representations of block deformation. The contact detection object is simplified from individual contact pair to the entire element during tangential contact force calculation, which significantly improves the computational efficiency. In order to analyze the deformation characteristics of the block, the finite element mesh is divided inside the discrete element of the block, with the outermost mesh defined as the minimum contact element. Contact forces are translated to equivalent nodal contact forces using the direct average method. Nonlinear finite element methods accurately simulate element deformation, overcoming the rigid body assumption of spheropolyhedra. Five numerical examples are simulated to verify the accuracy of the proposed method in capturing the deformation, motion morphology and mechanical characteristics of the element.

Key words: spheropolyhedral discrete element method, finite element method, deformable element, equivalent nodal force

CLC Number: 

  • O242
[1] WANG Gang, DENG Ze-zhi, JIN Wei, ZHANG Jian-min, . Staggered finite element and finite volume method for suffusion simulation based on local conservation [J]. Rock and Soil Mechanics, 2024, 45(3): 917-926.
[2] WANG Rui, HU Zhi-ping. Current situation and prospects of 2.5D finite element method for the analysis of dynamic response of railway subgrade [J]. Rock and Soil Mechanics, 2024, 45(1): 284-301.
[3] LIU Ying-jing, YANG Jie, ZHU Han-hua, YIN Zhen-Yu. A novel multiphysics modelling approach for grout loss analysis of backfill grouting in highly permeable soils during TBM tunnelling [J]. Rock and Soil Mechanics, 2023, 44(9): 2744-2756.
[4] ZHU Bin, PEI Hua-fu, YANG Qing, LU Meng-meng, WANG Tao, . Probabilistic analysis of wave-induced seabed response based on stochastic finite element method [J]. Rock and Soil Mechanics, 2023, 44(5): 1545-1556.
[5] WANG Rui, HU Zhi-ping, PENG Jian-bing, WANG Qi-yao, . Simulation of dynamic response of railway subgrade using 2.5D finite element method based on reduced 2D hermite interpolation [J]. Rock and Soil Mechanics, 2023, 44(3): 908-915.
[6] YI Ming-xing, ZHU Chang-qi, WANG Tian-min, LIU Hai-feng, MA Cheng-hao, WANG Xing, ZHANG Po-yu, QU Ru, . In-situ experimental study on spudcan penetration depth of jack-up platform in a site in Qidong city [J]. Rock and Soil Mechanics, 2022, 43(S2): 487-496.
[7] LI Yan-peng, LI Zhi-yuan, HU Zhi-qiang, LIN Gao, . A modified scaled boundary finite element method for scattering analysis of canyon-underground cavity system in horizontally layered site [J]. Rock and Soil Mechanics, 2022, 43(S2): 553-562.
[8] LIU Ying-jing, YANG Jie, YIN Zhen-yu, . Numerical analysis of the impact of internal erosion on underground structures: application to tunnel leakage [J]. Rock and Soil Mechanics, 2022, 43(5): 1383-1390.
[9] ZHU Wen-bo, DAI Guo-liang, WANG Bo-chen, GONG Wei-ming, WANG Hai-bo, ZHANG Yu, . Unloading creep of soft clay and long-term uplift bearing characteristics of suction caisson foundation [J]. Rock and Soil Mechanics, 2022, 43(3): 669-678.
[10] ZHAO Hai-peng, LI Xue-you, WAN Jian-hong, ZHENG Xiang-zhi, LIU Si-wei, . Analysis of laterally-loaded piles embedded in multi-layered soils using efficient finite-element method [J]. Rock and Soil Mechanics, 2021, 42(7): 1995-2003.
[11] WEI Kuang-min, CHEN Sheng-shui, MA Hong-yu, LI Guo-ying, MI Zhan-kuan, . A necessary improvement of the viscoelastic method for calculating the dynamic behaviors of the concrete faced rockfill dams [J]. Rock and Soil Mechanics, 2021, 42(12): 3475-3484.
[12] CI Hui-ling, BAI Bing, LEI Hong-wu, CUI Yin-xiang, . A high-precision scheme for field variables in finite element method [J]. Rock and Soil Mechanics, 2021, 42(11): 3137-3146.
[13] SONG Yi-min, LING Xiao-kang, ZHANG Jing-zong, ZHU Chen-li, REN He, YUAN De-shun. Inversion of mechanical parameters of geomaterials based on DSCM-FEM [J]. Rock and Soil Mechanics, 2021, 42(10): 2855-2864.
[14] DAI Xuan, GUO Wang, CHENG Xue-song, HUO Hai-feng, LIU Guo-guang, . Field measurement and numerical analysis for evaluating longitudinal settlement induced by shield tunneling parallel to building [J]. Rock and Soil Mechanics, 2021, 42(1): 233-244.
[15] WANG Xiang-nan, HAO Qing-shuo, YU Jia-lin, YU Yu-zhen, LÜ He, . Three-dimensional simulation of the separation of dam panel based on extended finite element method [J]. Rock and Soil Mechanics, 2020, 41(S1): 329-336.
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] 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 .
[3] HUANG Run-qiu, XU De-min. Volume change method for testing rock or rock mass permeability[J]. , 2009, 30(10): 2961 -2964 .
[4] LU Zheng, YAO Hai-lin, LUO Xing-wen, HU Meng-ling. 3D dynamic responses of layered ground under vehicle loads[J]. , 2009, 30(10): 2965 -2970 .
[5] LI Lei, ZHU Wei, LIN Cheng, T. OHKI. Study of wet and dry properties of solidified sludge[J]. , 2009, 30(10): 3001 -3004 .
[6] LIU Zhen-ping, HE Huai-jian, LI Qiang, ZHU Fa-hua. Study of the technology of 3D modeling and visualization system based on Python[J]. , 2009, 30(10): 3037 -3042 .
[7] JIANG Ling-fa, CHEN Shan-xiong, YU Zhong-jiu. Scattering around a liner of arbitrary shape in saturated soil under dilatational waves[J]. , 2009, 30(10): 3063 -3070 .
[8] LENG Wu-ming, YANG Qi, LIU Qing-tan, NIE Ru-song. Study of new method for calcutating response of piled bridge abutment in soft ground[J]. , 2009, 30(10): 3079 -3085 .
[9] 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 .
[10] ZHOU Xiao-jie, JIE Yu-xin, LI Guang-xin. Numerical simulation of piping based on coupling seepage and pipe flow[J]. , 2009, 30(10): 3154 -3158 .