JOURNAL ARTICLE

Cohesive Zone Model and GTN Model Collation for Ductile Crack Growth

Vladislav KozákIvo DlouhýZdeněk Chlup

Year: 2007 Journal:   Materials science forum Vol: 567-568 Pages: 145-148   Publisher: Trans Tech Publications

Abstract

The micromechanical modelling encounters a problem that is different from basic assumptions of continuum mechanics. The material is not uniform on the microscale level and the material within an element has its own complex microstructure. Therefore the concept of a representative volume element (RVE) has been introduced. The general advantage, compared to conventional fracture mechanics, is that, in principle, the parameters of the respective models depend only on the material and not on the geometry. These concepts guarantee transferability from specimen to components over a wide range of dimensions and geometries. The prediction of crack propagation through interface elements based on the fracture mechanics approach (damage) and cohesive zone model is presented. The cohesive model for crack propagation analysis is incorporated into finite element package by interface elements which separations are controlled by the traction-separation law.

Keywords:
Microscale chemistry Materials science Fracture mechanics Cohesive zone model Representative elementary volume Finite element method Mechanics Collation Traction (geology) Continuum mechanics Transferability Damage mechanics Microstructure Structural engineering Composite material Mechanical engineering Computer science Mathematics Engineering Physics

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Topics

Metal Forming Simulation Techniques
Physical Sciences →  Engineering →  Mechanical Engineering
Numerical methods in engineering
Physical Sciences →  Engineering →  Mechanics of Materials
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Physical Sciences →  Materials Science →  Materials Chemistry
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