Modelling fracture in an Al2O3 particle reinforced AA 6061 alloy using Weibull statistics

Citation
Km. Mussert et al., Modelling fracture in an Al2O3 particle reinforced AA 6061 alloy using Weibull statistics, J MATER SCI, 34(17), 1999, pp. 4097-4104
Citations number
14
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science","Material Science & Engineering
Journal title
JOURNAL OF MATERIALS SCIENCE
ISSN journal
00222461 → ACNP
Volume
34
Issue
17
Year of publication
1999
Pages
4097 - 4104
Database
ISI
SICI code
0022-2461(1999)34:17<4097:MFIAAP>2.0.ZU;2-E
Abstract
Fracture in an AA 6061 based metal matrix composite (MMC) containing 20 vol % Al2O3 particles is modelled using an axisymmetrical finite element model and a statistical approach for calculating the strength of reinforcing cer amic particles via the Weibull model. Within this model, variables such as the volume fraction, particle size and matrix alloy properties can be varie d. When modelling the fracture behaviour of one particle, it is assumed tha t the survival probability of the ceramic particle is governed by a Weibull distribution. Fracture statistics of the MMC is examined by plotting the s urvival probability of an Al2O3 particle vs. the macroscopic axial stress a pplied on the whole MMC. Based on initial calculations it can be concluded that the relation between the macroscopic applied stress on the MMC and the survival probability of the ceramic particle can be described by the Weibu ll modulus m, as long as the stress distribution in the matrix surrounding the particle is proportional to the applied load and that triaxial loading of the MMC results in a lower survival probability compared to uniaxial loa ding. Fracture behaviour of MMCs can well be described and a 'mastercurve' can be made for various characteristic stresses and matrix yield stresses a t a specific hardening exponent for the matrix material. (C) 1999 Kluwer Ac ademic Publishers.