Multi-time-step coupling of peridynamics and classical continuum mechanics for dynamic brittle fracture

被引:0
|
作者
Zhong, Jiandong [1 ,2 ]
Han, Fei [1 ,2 ,3 ]
Du, Zongliang [1 ,2 ,3 ]
Guo, Xu [1 ,2 ,3 ]
机构
[1] Dalian Univ Technol, State Key Lab Struct Anal Optimizat, Dalian 116023, Peoples R China
[2] Dalian Univ Technol, Dept Engn Mech, CAE Software Ind Equipment, Dalian 116023, Peoples R China
[3] Dalian Univ Technol, Ningbo Inst, Ningbo 315016, Peoples R China
关键词
Peridynamics; Continuum mechanics; Multi-time-step; Coupling method; Dynamic fracture; EXPLICIT FINITE-ELEMENTS; FREE GALERKIN METHODS; TRANSIENT ANALYSIS; CO-COMPUTATIONS; INTEGRATION; STABILITY; IMPLEMENTATION; PROPAGATION; ELASTICITY; MODEL;
D O I
10.1016/j.engfracmech.2024.110264
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Peridynamics (PD), as a nonlocal theory, is well-suited for solving problems with discontinuities, such as cracks. However, the nonlocal effect of peridynamics makes it computationally expensive for dynamic fracture problems in large-scale engineering applications. As an alternative, this study proposes a multi-time-step (MTS) coupling model of PD and classical continuum mechanics (CCM) based on the Arlequin framework. Peridynamics is applied to the fracture domain of the structure, while continuum mechanics is applied to the rest of the structure. The MTS method enables the peridynamic model to be solved at a small time step and the continuum mechanical model is solved at a larger time step. Consequently, higher computational efficiency is achieved for the fracture domain of the structure while ensuring computational accuracy, and this coupling method can be easily applied to large-scale engineering fracture problems.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] A multigrid coupling approach of the extended isogeometric-meshfree method and peridynamics for brittle fracture
    Li, Weidong
    Nhon, Nguyen-Thanh
    Zhang, Qi
    Du, Hejun
    Li, Shaofan
    Zhou, Kun
    COMPUTATIONAL MECHANICS, 2024, 73 (02) : 427 - 447
  • [32] Coupling XFEM and peridynamics for brittle fracture simulation-part I: feasibility and effectiveness
    Giannakeas, Ilias N.
    Papathanasiou, Theodosios K.
    Fallah, Arash S.
    Bahai, Hamid
    COMPUTATIONAL MECHANICS, 2020, 66 (01) : 103 - 122
  • [33] An energy-based ghost-force-free multivariate coupling scheme for bond-based peridynamics and classical continuum mechanics
    Jiang, Feng
    Shen, Yongxing
    Cheng, Jun-Bo
    ENGINEERING FRACTURE MECHANICS, 2020, 240 (240)
  • [34] Coupling Peridynamics with the Classical Methods for Modeling Hydraulic Fracture Growth in Heterogeneous Reservoirs
    Agrawal, Shivam
    York, Jason
    Foster, John T.
    Sharma, Mukul M.
    SPE JOURNAL, 2021, 26 (05): : 2651 - 2669
  • [35] Elastic plate under low velocity impact: Classical continuum mechanics vs peridynamics analysis
    Altenbach, Holm
    Larin, Oleksiy
    Naumenko, Konstantin
    Sukhanova, Olha
    Wuerkner, Mathias
    AIMS MATERIALS SCIENCE, 2022, 9 (05) : 702 - 718
  • [36] Multi-time-step finite-difference time-domain method
    Zheng, Yang-Ming
    Chu, Qing-Xin
    Tien Tzu Hsueh Pao/Acta Electronica Sinica, 2004, 32 (09): : 1504 - 1506
  • [37] Confirming the continuum theory of dynamic brittle fracture for fast cracks
    Sharon, E
    Fineberg, J
    NATURE, 1999, 397 (6717) : 333 - 335
  • [38] Confirming the continuum theory of dynamic brittle fracture for fast cracks
    Eran Sharon
    Jay Fineberg
    Nature, 1999, 397 : 333 - 335
  • [39] A hybrid multi-time-step framework for pore-scale and continuum-scale modeling of solute transport in porous media
    Karimi, S.
    Nakshatrala, K. B.
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2017, 323 : 98 - 131
  • [40] Coupling XFEM and Peridynamics for brittle fracture simulation: part II-adaptive relocation strategy
    Giannakeas, Ilias N.
    Papathanasiou, Theodosios K.
    Fallah, Arash S.
    Bahai, Hamid
    COMPUTATIONAL MECHANICS, 2020, 66 (03) : 683 - 705