A first-order hyperbolic arbitrary Lagrangian Eulerian conservation formulation for nonlinear solid dynamics in irreversible processes
DOI10.1016/J.JCP.2024.113322MaRDI QIDQ6615717
Chun Hean Lee, Clare Wood, Antonio J. Gil, Thomas B. J. Di Giusto, Javier Bonet, Matteo Giacomini
Publication date: 8 October 2024
Published in: Journal of Computational Physics (Search for Journal in Brave)
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Numerical and other methods in solid mechanics (74Sxx) Numerical methods for partial differential equations, initial value and time-dependent initial-boundary value problems (65Mxx) Elastic materials (74Bxx)
Cites Work
- Title not available (Why is that?)
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- A vertex centred finite volume Jameson-Schmidt-Turkel (JST) algorithm for a mixed conservation formulation in solid dynamics
- Riemann solutions and spacetime discontinuous Galerkin method for linear elastodynamic contact
- Multi-material ALE computation in inertial confinement fusion code CHIC
- Stabilized methods for compressible flows
- Discontinuous Galerkin solution of the Navier-Stokes equations on deformable domains
- Two-step hybrid conservative remapping for multimaterial arbitrary Lagrangian-Eulerian methods
- Arbitrary Lagrangian-Eulerian methods for modeling high-speed compressible multimaterial flows
- Development of a stabilised Petrov-Galerkin formulation for conservation laws in Lagrangian fast solid dynamics
- Reale: a Reconnection-based Arbitrary-Lagrangian-Eulerian method
- A two-dimensional unstructured cell-centered multi-material ALE scheme using VOF interface reconstruction
- Lagrangian-Eulerian finite element formulation for incompressible viscous flows
- Calculating three-dimensional fluid flows at all speeds with an Eulerian- Lagrangian computing mesh
- Thermodynamics and stability
- Finite element analysis of incompressible viscous flows by the penalty function formulation
- A stabilised Petrov-Galerkin formulation for linear tetrahedral elements in compressible, nearly incompressible and truly incompressible fast dynamics
- A first order hyperbolic framework for large strain computational solid dynamics. I: Total Lagrangian isothermal elasticity
- A computational framework for polyconvex large strain elasticity
- An arbitrary Lagrangian-Eulerian finite element method for incompressible hyperelasticity
- Quasilinear hyperbolic systems with involutions
- An upwind cell centred total Lagrangian finite volume algorithm for nearly incompressible explicit fast solid dynamic applications
- A total Lagrangian upwind smooth particle hydrodynamics algorithm for large strain explicit solid dynamics
- An ALE/embedded boundary method for two-material flow simulations
- A first order hyperbolic framework for large strain computational solid dynamics. III: Thermo-elasticity
- An entropy-stable smooth particle hydrodynamics algorithm for large strain thermo-elasticity
- A variational formulation of thermomechanical constitutive update for hyperbolic conservation laws
- A new updated reference Lagrangian smooth particle hydrodynamics algorithm for isothermal elasticity and elasto-plasticity
- A new Jameson-Schmidt-Turkel smooth particle hydrodynamics algorithm for large strain explicit fast dynamics
- Implicit finite incompressible elastodynamics with linear finite elements: a stabilized method in rate form
- A variationally consistent streamline upwind Petrov-Galerkin smooth particle hydrodynamics algorithm for large strain solid dynamics
- An upwind vertex centred finite volume solver for Lagrangian solid dynamics
- A first order hyperbolic framework for large strain computational solid dynamics. II: Total Lagrangian compressible, nearly incompressible and truly incompressible elasticity
- An ALE formulation based on spatial and material settings of continuum mechanics. I: Generic hyperelastic formulation
- An ALE formulation based on spatial and material settings of continuum mechanics. II: Classification and applications
- A polyconvex transversely-isotropic invariant-based formulation for electro-mechanics: stability, minimisers and computational implementation
- Stability and comparison of different linear tetrahedral formulations for nearly incompressible explicit dynamic applications
- Nonlinear solid mechanics. A continuum approach for engineering
- An averaged nodal deformation gradient linear tetrahedral element for large strain explicit dynamic applications
- A simple, stable, and accurate linear tetrahedral finite element for transient, nearly, and fully incompressible solid dynamics: a dynamic variational multiscale approach
- Localized remeshing techniques for three-dimensional metal forming simulations with linear tetrahedral elements
- A uniform nodal strain tetrahedron with isochoric stabilization
- A uniform strain hexahedron and quadrilateral with orthogonal hourglass control
- New ALE applications in non‐linear fast‐transient solid dynamics
- An arbitrary Lagrangian-Eulerian finite element method for finite strain plasticity
- Arbitrary Lagrangian-Eulerian (ALE) formulation for hyperelastoplasticity
- Finite Volume Methods for Hyperbolic Problems
- A compatible finite element multi‐material ALE hydrodynamics algorithm
- A variationally consistent fractional time-step integration method for incompressible and nearly incompressible Lagrangian dynamics
- Nonlinear Solid Mechanics for Finite Element Analysis: Statics
- Über die partiellen Differenzengleichungen der mathematischen Physik.
- A high-order Eulerian Godunov method for elastic-plastic flow in solids
- An ALE approach for large-deformation thermoplasticity with application to friction welding
- An acoustic Riemann solver for large strain computational contact dynamics
- A kinematically stabilized linear tetrahedral finite element for compressible and nearly incompressible finite elasticity
- An upwind vertex centred finite volume algorithm for nearly and truly incompressible explicit fast solid dynamic applications: total and updated Lagrangian formulations
- Elastoplasticity with linear tetrahedral elements: a variational multiscale method
- A first-order hyperbolic framework for large strain computational solid dynamics: an upwind cell centred total Lagrangian scheme
- A first-order hyperbolic arbitrary Lagrangian Eulerian conservation formulation for non-linear solid dynamics
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