Creep behaviour of Al2O3–SiC nanocomposites
1999; Elsevier BV; Volume: 19; Issue: 13-14 Linguagem: Inglês
10.1016/s0955-2219(99)00095-3
ISSN1873-619X
AutoresP. Descamps, Daniel O’Sullivan, Marc Poorteman, Jean-Claude Descamps, Anne Leriche, F. Cambier,
Tópico(s)Advanced materials and composites
ResumoAbstract Compared with monolithic fine grained Al 2 O 3 , Al 2 O 3 nanocomposites reinforced with SiC nanoparticles display especially high modulus of rupture as well as reduced creep strain. Taking into account the fracture mode change, the morphology of ground surfaces showing plastic grooving, the low sensitivity to wear and the low dependence of erosion rate with grain size, it can be reasonably assumed that the strength improvement is associated with an increase of the interface cohesion (due to bridging by SiC particles) rather than with a grain size refinement involving substructure formation (as initially suggested by Niihara). In the present work, creep tests have been performed and the results agree with such a reinforcement of the mechanical properties by SiC particle bridging Al 2 O 3 –Al 2 O 3 grain boundaries. Indeed, particles pinning the grain boundaries hinder grain boundary sliding resulting in a large improvement in creep resistance. In addition, SiC particles, while counteracting sliding, give rise to a recoverable viscoelastic contribution to creep. Because of the increased interface strength, the samples undergoing creep support stress levels, greater than the threshold value required to activate dislocation motion. The high stress exponent value as well as the presence of a high dislocation density in the strained materials suggests that a lattice mechanism controls the deformation process. Finally, a model is proposed which fits well with the experimental creep results.
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