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A Four-Node Plane EAS-Element for Stochastic Nonlinear Materials (2003)
Brehm, Maik ; Most, Thomas
Iso-parametric finite elements with linear shape functions show in general a too stiff element behavior, called locking. By the investigation of structural parts under bending loading the so-called shear locking appears, because these elements can not reproduce pure bending modes. Many studies dealt with the locking problem and a number of methods to avoid the undesirable effects have been developed. Two well known methods are the >Assumed Natural Strain< (ANS) method and the >Enhanced Assumed Strain< (EAS) method. In this study the EAS method is applied to a four-node plane element with four EAS-parameters. The paper will describe the well-known linear formulation, its extension to nonlinear materials and the modeling of material uncertainties with random fields. For nonlinear material behavior the EAS parameters can not be determined directly. Here the problem is solved by using an internal iteration at the element level, which is much more efficient and stable than the determination via a global iteration. To verify the deterministic element behavior the results of common test examples are presented for linear and nonlinear materials. The modeling of material uncertainties is done by point-discretized random fields. To show the applicability of the element for stochastic finite element calculations Latin Hypercube Sampling was applied to investigate the stochastic hardening behavior of a cantilever beam with nonlinear material. The enhanced linear element can be applied as an alternative to higher-order finite elements where more nodes are necessary. The presented element formulation can be used in a similar manner to improve stochastic linear solid elements.
Discussion on Almost sure stability of stochastic linear systems with ergodic parameters (2008)
Most, Thomas ; Ishii, H. ; Geng, X. ; Bolzern, P. ; Colaneri, P. ; De Nicolao, G.
Discussion on Almost sure stability of stochastic linear systems with ergodic parameters
Application of a hybrid parallelization technique to accelerate the numerical simulation of nonlinear mechanical problems (2004)
Most, Thomas ; Eckardt, Stefan
This paper presents the combination of two different parallelization environments, OpenMP and MPI, in one numerical simulation tool. The computation of the system matrices and vectors is parallelized with OpenMP and the solution of the system of equations is done with the MPIbased solver MUMPS. The efficiency of both algorithms is shown on several linear and nonlinear examples using the Finite Element Method and a meshless discretization technique.
Energy-based simulation of concrete cracking using an improved mixed-mode cohesive crack model within a meshless discretization (2007)
Most, Thomas ; Bucher, Christian
Energy-based simulation of concrete cracking using an improved mixed-mode cohesive crack model within a meshless discretization
Stochastic crack growth simulation in R/C structures by means of meshless methods (2005)
Most, Thomas ; Unger, Jörg F. ; Bucher, Christian
Stochastic crack growth simulation in R/C structures by means of meshless methods
A moving least squares weighting function for the element-free Galerkin method which almost fulfills essential boundary conditions (2005)
Most, Thomas ; Bucher, Christian
A moving least squares weighting function for the element-free Galerkin method which almost fulfills essential boundary conditions
Stochastic dynamic stability analysis for nonlinear structures (2002)
Most, Thomas ; Bucher, Christian
Stochastic dynamic stability analysis for nonlinear structures
Stochastic modeling of cohesive crack propagation using meshless discretization techniques (2004)
Most, Thomas ; Unger, Jörg F. ; Bucher, Christian
Stochastic modeling of cohesive crack propagation using meshless discretization techniques
Stochastic modeling of cohesive crack evolution in concrete using meshless interpolation techniques (2004)
Most, Thomas ; Bucher, Christian
Stochastic modeling of cohesive crack evolution in concrete using meshless interpolation techniques
Stochastic simulation of cracking in concrete structures using multi-parameter random fields (2006)
Most, Thomas ; Bucher, Christian
Stochastic simulation of cracking in concrete structures using multi-parameter random fields
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