Atomistic Aspects of Crack Propagation in Brittle Materials: Multimillion Atom Molecular Dynamics Simulations
- 1 August 2002
- journal article
- Published by Annual Reviews in Annual Review of Materials Research
- Vol. 32 (1) , 377-400
- https://doi.org/10.1146/annurev.matsci.32.111201.142017
Abstract
▪ Abstract Atomistic aspects of dynamic fracture in a variety of brittle crystalline, amorphous, nanophase, and nanocomposite materials are reviewed. Molecular dynamics (MD) simulations, ranging from a million to 1.5 billion atoms, are performed on massively parallel computers using highly efficient multiresolution algorithms. These simulations shed new light on (a) branching, deflection, and arrest of cracks; (b) growth of nanoscale pores ahead of the crack and how pores coalesce with the crack to cause fracture; and (c) the influence of these mechanisms on the morphology of fracture surfaces. Recent advances in novel multiscale simulation schemes combining quantum mechanical, molecular dynamics, and finite-element approaches and the use of these hybrid approaches in the study of crack propagation are also discussed.Keywords
This publication has 84 references indexed in Scilit:
- Hybrid finite-element/molecular-dynamics/electronic-density-functional approach to materials simulations on parallel computersComputer Physics Communications, 2001
- Scalable I/O of large-scale molecular dynamics simulations: A data-compression algorithmComputer Physics Communications, 2000
- A hybrid method for solutes in complex solvents: Density functional theory combined with empirical force fieldsThe Journal of Chemical Physics, 1999
- Million atom molecular dynamics simulations of materials on parallel computersCurrent Opinion in Solid State and Materials Science, 1996
- Quantitative analysis of a fracture surface by atomic force microscopyPhysical Review E, 1996
- Quasicontinuum analysis of defects in solidsPhilosophical Magazine A, 1996
- Multiresolution molecular dynamics algorithm for realistic materials modeling on parallel computersComputer Physics Communications, 1994
- Roughness of Two-Dimensional Cracks in WoodPhysical Review Letters, 1994
- Parallel multiple-time-step molecular dynamics with three-body interactionComputer Physics Communications, 1993
- An experimental investigation into dynamic fracture: III. On steady-state crack propagation and crack branchingInternational Journal of Fracture, 1984