A finite volume penalty‐based implicit procedure for the treatment of the frictionless contact boundaries
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Publication:6082585
DOI10.1002/nme.7302OpenAlexW4380204789MaRDI QIDQ6082585
Unnamed Author, Philip Cardiff, Ivan Batistić, Željko Tuković
Publication date: 30 November 2023
Published in: International Journal for Numerical Methods in Engineering (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1002/nme.7302
Special kinds of problems in solid mechanics (74Mxx) Numerical and other methods in solid mechanics (74Sxx) Numerical methods for partial differential equations, initial value and time-dependent initial-boundary value problems (65Mxx)
Cites Work
- Unnamed Item
- Conservative interpolation between volume meshes by local Galerkin projection
- A segment-to-segment contact strategy
- A large strain finite volume method for orthotropic bodies with general material orientations
- Sliding interfaces with contact-impact in large-scale Lagrangian computations
- Indentation by nominally flat or conical indenters with rounded corners
- Finite volume analysis of stress and deformation in hygro-thermo-elastic orthotropic body
- Lubricated elastoplastic contact model for metal forming processes in OpenFOAM
- Finite volume method for thermo-elasto-plastic stress analysis
- An upwind cell centred total Lagrangian finite volume algorithm for nearly incompressible explicit fast solid dynamic applications
- A finite volume penalty based segment-to-segment method for frictional contact problems
- A mortar segment-to-segment frictional contact method for large deformations
- Finite-volume stress analysis in multi-material linear elastic body
- A finite volume method for large strain analysis of incompressible hyperelastic materials
- Numerical Modelling of Contact Elastic-Plastic Flows
- Contact Mechanics
- Application of the finite volume method and unstructured meshes to linear elasticity
- Numerical Methods in Contact Mechanics
- A Lagrangian cell‐centred finite volume method for metal forming simulation
- Development of a semi‐implicit contact methodology for finite volume stress solvers