In this paper an arbitrary Lagrangian-Eulerian (ALE) method to solve dynamic problems involving large deformation is presented. This ALE method is based upon the operator-split technique in which the material displacements and mesh displacements are uncoupled. A brief history of the ALE method is first presented and then special issues such as time-stepping, mesh refinement, energy absorbing boundaries, dynamic equilibrium checks and remapping of state variables are explained. The ALE method and the updated-lagrangian (UL) method are then used to analyse some geotechnical problems to examine the significance of inertia effects, large deformation and contact mechanics. The results show the efficiency of the ALE method for solving dynamic geo...
In this paper, an arbitrary Lagrangian–Eulerian (ALE) method is generalized to solve consolidation p...
Penetration problems in geomechanics involve the insertion or intrusion of solid bodies into the gro...
The arbitrary Lagrangian—Eulerian (ALE) formulation, which is already well established in the hydrod...
In this paper an arbitrary Lagrangian–Eulerian (ALE) method to solve dynamic problems involving larg...
In this paper, an Arbitrary Lagrangian-Eulerian (ALE) method is addressed to solve dynamic problems ...
In many geotechnical problems it is vital to consider the geometrical non-linearity caused by large ...
In many geotechnical problems it is vital to consider the geometrical non-linearity caused by large ...
Analysis of large deformation of geomaterials subjected to time-varying load poses a very difficult ...
Analysis of large deformation of geomaterials subjected to time-varying load poses a very difficult ...
Many engineering problems involve large material deformation, large boundary motion and continuous c...
This paper first discusses alternative stress integration schemes in numerical solutions to large- d...
Aim of the present chapter is to provide an in-depth survey of arbitrary Lagrangian-Eulerian (ALE) m...
Aim of the present chapter is to provide an in-depth survey of arbitrary Lagrangian-Eulerian (ALE) m...
The numerical simulation of forming processes can be performed using the updated Lagrangian method. ...
In geotechnical problems, deformation is usually coupled with flow of pore fluids. A coupled finite ...
In this paper, an arbitrary Lagrangian–Eulerian (ALE) method is generalized to solve consolidation p...
Penetration problems in geomechanics involve the insertion or intrusion of solid bodies into the gro...
The arbitrary Lagrangian—Eulerian (ALE) formulation, which is already well established in the hydrod...
In this paper an arbitrary Lagrangian–Eulerian (ALE) method to solve dynamic problems involving larg...
In this paper, an Arbitrary Lagrangian-Eulerian (ALE) method is addressed to solve dynamic problems ...
In many geotechnical problems it is vital to consider the geometrical non-linearity caused by large ...
In many geotechnical problems it is vital to consider the geometrical non-linearity caused by large ...
Analysis of large deformation of geomaterials subjected to time-varying load poses a very difficult ...
Analysis of large deformation of geomaterials subjected to time-varying load poses a very difficult ...
Many engineering problems involve large material deformation, large boundary motion and continuous c...
This paper first discusses alternative stress integration schemes in numerical solutions to large- d...
Aim of the present chapter is to provide an in-depth survey of arbitrary Lagrangian-Eulerian (ALE) m...
Aim of the present chapter is to provide an in-depth survey of arbitrary Lagrangian-Eulerian (ALE) m...
The numerical simulation of forming processes can be performed using the updated Lagrangian method. ...
In geotechnical problems, deformation is usually coupled with flow of pore fluids. A coupled finite ...
In this paper, an arbitrary Lagrangian–Eulerian (ALE) method is generalized to solve consolidation p...
Penetration problems in geomechanics involve the insertion or intrusion of solid bodies into the gro...
The arbitrary Lagrangian—Eulerian (ALE) formulation, which is already well established in the hydrod...