An improved stabilized peridynamic correspondence material model for the crack propagation of nearly incompressible hyperelastic materials
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Publication:2678556
DOI10.1016/j.cma.2022.115840OpenAlexW4311796683MaRDI QIDQ2678556
Hanbo Zhang, Hongfei Ye, Chengxuan Li, Yonggang Zheng, Hong-Wu Zhang
Publication date: 23 January 2023
Published in: Computer Methods in Applied Mechanics and Engineering (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.cma.2022.115840
crack propagationperidynamiczero-energy modenearly incompressible hyperelastic materialsstabilized correspondence material model
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Cites Work
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- Non-ordinary state-based peridynamic analysis of stationary crack problems
- Force flux and the peridynamic stress tensor
- Linearized theory of peridynamic states
- Convergence of peridynamics to classical elasticity theory
- Reformulation of elasticity theory for discontinuities and long-range forces
- Nonlocal matching boundary conditions for non-ordinary peridynamics with correspondence material model
- A stabilized non-ordinary state-based peridynamic model
- A modified peridynamics correspondence principle: removal of zero-energy deformation and other implications
- An implicit non-ordinary state-based peridynamics with stabilised correspondence material model for finite deformation analysis
- Peridynamic modeling of bonded-lap joints with viscoelastic adhesives in the presence of finite deformation
- A unified non-local fluid transport model for heterogeneous saturated porous media
- Phase-field implicit material point method with the convected particle domain interpolation for brittle-ductile failure transition in geomaterials involving finite deformation
- A combined phase-field and cohesive zone model approach for crack propagation in layered structures made of nonlinear rubber-like materials
- Explicit phase-field total Lagrangian material point method for the dynamic fracture of hyperelastic materials
- Possible causes of numerical oscillations in non-ordinary state-based peridynamics and a bond-associated higher-order stabilized model
- A semi-Lagrangian constitutive correspondence framework for peridynamics
- Bridging the gap between local and nonlocal numerical methods -- a unified variational framework for non-ordinary state-based peridynamics
- A nonlocal operator method for finite deformation higher-order gradient elasticity
- Stochastic analysis of polymer composites rupture at large deformations modeled by a phase field method
- Stability of peridynamic correspondence material models and their particle discretizations
- Peridynamic states and constitutive modeling
- Phase field modeling of brittle fracture for enhanced assumed strain shells at large deformations: formulation and finite element implementation
- A non-ordinary state-based peridynamic method to model solid material deformation and fracture
- An approach for incorporating classical continuum damage models in state-based peridynamics
- Peridynamic Theory and Its Applications
- The eXtended finite element method for cracked hyperelastic materials: A convergence study
- Finite strain fracture analysis using the extended finite element method with new set of enrichment functions
- Handbook of Peridynamic Modeling
- Viscoplasticity using peridynamics
- Bounds for element size in a variable stiffness cohesive finite element model
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