Publication | Open Access
Deformation Behavior and Microstructure Effect in 2124Al/SiCp Composite
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Citations
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References
2000
Year
EngineeringMechanical EngineeringWork HardeningμM Sic ParticlesSic ParticlesCeramic Matrix CompositeStructural MaterialsMicrostructure EffectCompression (Physics)Microstructure-strength RelationshipMaterials ScienceCeramic MaterialCarbon MaterialsDynamic Compression TestsStructural CeramicMicrostructureMechanical PropertiesMechanics Of MaterialsHigh Strain Rate
Dynamic compression tests were performed by means of a Split Hopkinson Pressure Bar (SHPB). Test materials were 2124Al alloys reinforced with 17% volume fraction of 3, 13 and 37 μm SiC particles, respectively. Under strain rate ε = 2100 l/s, SiC particles have a strong effect on σ 0.2 of the composites and the σ 0.2 increases with different SiC particle size in the following order: 2124Al-alloy → 124Al/SiC p (37 μm) → 2124Al/SiC p (13 μm) → 2124Al/SiC p (3 μm), and the strain hardening of the composites depends mainly on the strain hardening of matrix, 2124A1 alloy. The results of dimensional analysis present that the flow stress of these composites not only depends on the property of reinforcement and matrix but also relates to the microstructure scale, matrix grain size, reinforcement size, the distance between reinforcements and dislocations in matrix. The normalized flow stress here is a function of inverse power of the edge-edge particle spacing, dislocation density and matrix grain size. Close-up observation shows that, in the composite containing SiC particles (3 μm), localized deformation formed readily comparing with other materials under the same loading condition. Microscopic observations indicate that different plastic flow patterns occur within the matrix due to the presence of hard particles with different sizes.
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