An enhanced grain-boundary framework for computational homogenization and micro-cracking simulations of polycrystalline materials
From MaRDI portal
Publication:889668
DOI10.1007/s00466-015-1192-8zbMath1329.74055OpenAlexW1630754956MaRDI QIDQ889668
Vincenzo Gulizzi, Ivano Benedetti, Alberto Milazzo
Publication date: 9 November 2015
Published in: Computational Mechanics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s00466-015-1192-8
microcrackingboundary element methodmicromechanicscomputational homogenizationpolycrystalline materials
Brittle fracture (74R10) Crystalline structure (74E15) Micromechanics of solids (74M25) Homogenization in equilibrium problems of solid mechanics (74Q05)
Related Items
A microstructural model for homogenisation and cracking of piezoelectric polycrystals ⋮ A 2D RVE formulation by the boundary element method considering phase debonding ⋮ BESLE: boundary element software for 3D linear elasticity ⋮ An integral framework for computational thermo-elastic homogenization of polycrystalline materials ⋮ Application of the grain boundary formulation and image processing-based algorithm in micro-mechanical analysis of piezoelectric ceramic ⋮ A computational framework for low-cycle fatigue in polycrystalline materials ⋮ Modelling intergranular and transgranular micro-cracking in polycrystalline materials
Uses Software
Cites Work
- Unnamed Item
- Unnamed Item
- Unnamed Item
- Unnamed Item
- Unnamed Item
- Routes for efficient computational homogenization of~nonlinear materials using the~proper generalized decompositions
- A numerical modelling of 3D polycrystal-to-polycrystal diffusive phase transformations involving crystal plasticity
- Large-scale 3D random polycrystals for the finite element method: generation, meshing and remeshing
- Introduction to computational micromechanics
- On the treatment of corners in the boundary element method
- Multi-scale finite element analyses of sheet metals by using SEM-EBSD measured crystallographic RVE models
- The reduced model multiscale method (R3M) for the nonlinear homogenization of hyperelastic media at finite strains
- A fast 3D dual boundary element method based on hierarchical matrices
- Multi-scale computational homogenization: trends and challenges
- A two-scale deformation model for polycrystalline solids using a strongly-coupled finite element methodology
- NETGEN: An advancing front 2D/3D-mesh generator based on abstract rules
- Determination of the size of the representative volume element for random composites: Statistical and numerical approach.
- Simulation of the multi-scale convergence in computational homogenization approaches
- Multiscale modeling of polycrystalline materials: a boundary element approach to material degradation and fracture
- Micro-stress distribution within polycrystalline aggregate
- Constructing efficient substructure-based preconditioners for BEM systems of equations
- A three-dimensional cohesive-frictional grain-boundary micromechanical model for intergranular degradation and failure in polycrystalline materials
- Bounds and self-consistent estimates for elastic constants of random polycrystals with hexagonal, trigonal, and tetragonal symmetries
- Arc-length procedures with BEM in physically nonlinear problems
- A new method to the treatment of corners in the BEM
- A variational approach to the theory of the elastic behaviour of polycrystals
- Matching-based preprocessing algorithms to the solution of saddle-point problems in large-scale nonconvex interior-point optimization
- Fitting three-dimensional Laguerre tessellations to foam structures
- Analysis of Composite Materials—A Survey
- Random Laguerre tessellations
- A fast dual boundary element method for 3D anisotropic crack problems
- A boundary cohesive grain element formulation for modelling intergranular microfracture in polycrystalline brittle materials
- Gmsh: A 3-D finite element mesh generator with built-in pre- and post-processing facilities
- A Variational Approach to the Theory of the Effective Magnetic Permeability of Multiphase Materials
- A fast incremental/iterative solution procedure that handles “snap-through”
- Brittle fracture in polycrystalline microstructures with the extended finite element method
- A Simple Mesh Generator in MATLAB
- On Large-Scale Diagonalization Techniques for the Anderson Model of Localization