Finite element micromechanical modelling of yield and collapse behaviour of metal matrix composites

Citation
Mm. Aghdam et al., Finite element micromechanical modelling of yield and collapse behaviour of metal matrix composites, J MECH PHYS, 48(3), 2000, pp. 499-528
Citations number
35
Categorie Soggetti
Mechanical Engineering
Journal title
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS
ISSN journal
00225096 → ACNP
Volume
48
Issue
3
Year of publication
2000
Pages
499 - 528
Database
ISI
SICI code
0022-5096(200003)48:3<499:FEMMOY>2.0.ZU;2-Y
Abstract
The initial yield and collapse behaviour of fibre reinforced metal matrix c omposites (MMCs) have been investigated using finite element micro-mechanic al models. Initial yield occurs as the loading on the MMC is increased unti l the most heavily loaded point within the matrix reaches the yield stress. Collapse occurs when the MMC is unable to support a higher load. The resul ts of this work show that loads to cause collapse of MMCs are higher than t hose to cause first yield, particularly when the effect of residual stress arising from manufacture is included in the analysis. Initial yield and col lapse envelopes have been generated for a Silicon Carbide-Titanium MMC for biaxial and shear loading. These envelopes include the effect of residual s tress and also various interface conditions between the fibre acid matrix: either perfectly bonded or de-bonded, with and without friction. An analyti cal micro-mechanical model has been developed using the method of cells to predict the collapse behaviour. The results of the analytical model compare reasonably well with those of the finite element method. Using the analyti cal model the effect of varying the fibre volume fraction on the collapse b ehaviour has been studied. (C) 2000 Elsevier Science Ltd. All rights reserv ed.