Title of article
Effect of reinforcement connectivity on the elasto-plastic behavior of aluminum composites containing sub-micron alumina particles Original Research Article
Author/Authors
M Kouzeli، نويسنده , , D.C Dunand، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2003
Pages
17
From page
6105
To page
6121
Abstract
The mechanical properties of composites consisting of an aluminum matrix with 34 and 37 vol.% sub-micron Al2O3 particles were studied in compression for two reinforcement architectures: interconnected and discontinuous. Both the elastic and plastic behaviors of these composites are successfully modeled using a self-consistent approach: the classical self-consistent and the three-phase self-consistent models for the interconnected and discontinuous architectures, respectively. At ambient temperature, an interconnected architecture offers only a modest increase in stiffness and strength over a discontinuous architecture of equal volume fraction. At elevated temperatures (250, 500 and 600 °C), the interconnected reinforcement becomes increasingly more effective at strengthening the composites. However, the relative increase in strength due to interconnectivity can only be exploited at small strains (1–5%) due to the early development of compressive flow instabilities in the interconnected composites. While microstructural damage controls the instability strain of the interconnected composites at ambient temperature, their low strain-hardening coefficient is the main contribution to flow instabilities at elevated temperature.
Keywords
Particulate reinforced composites , Interpenetrating microstructure , Aluminum , Compression test , Mean field analysis
Journal title
ACTA Materialia
Serial Year
2003
Journal title
ACTA Materialia
Record number
1140588
Link To Document