English

Fracture simulation for zirconia toughened alumina microstructure

Medical Physics 2013-12-02 v1

Abstract

Purpose - The purpose of this paper is to describe finite element modelling for fracture and fatigue behaviour of zirconia toughened alumina microstructures. Design/methodology/approach - A two-dimensional finite element model is developed with an actual Al2O3Al{_2}O{_3} - 10 vol% ZrO2ZrO{_2} microstructure. A bilinear, time-independent cohesive zone law is implemented for describing fracture behaviour of grain boundaries. Simulation conditions are similar to those found at contact between a head and a cup of hip prosthesis. Residual stresses arisen from the mismatch of thermal coefficient between grains are determined. Then, effects of a micro-void and contact stress magnitude are investigated with models containing residual stresses. For the purpose of simulating fatigue behaviour, cyclic loadings are applied to the models. Findings - Results show that crack density is gradually increased with increasing magnitude of contact stress or number of fatigue cycles. It is also identified that a micro-void brings about the increase of crack density rate. Social implications - This paper is the first step for predicting the lifetime of ceramic implants. The social implications would appear in the next few years about health issues. Originality/value - This proposed finite element method allows describing fracture and fatigue behaviours of alumina-zirconia microstructures for hip prosthesis, provided that a microstructure image is available.

Keywords

Cite

@article{arxiv.1311.7365,
  title  = {Fracture simulation for zirconia toughened alumina microstructure},
  author = {Kyungmok Kim and Jean Geringer and Bernard Forest},
  journal= {arXiv preprint arXiv:1311.7365},
  year   = {2013}
}
R2 v1 2026-06-22T02:17:03.589Z