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Open AccessJournal ArticleDOI

Strengthening mechanisms in aluminum-ceramic particle composite alloys produced by mechanical alloying

TLDR
In this article, the authors analyzed the room-temperature yield strength of powder-metallurgy Al-ceramic particle composite alloys produced by mechanical alloying from a viewpoint of microstructure which was characterized by several features: high dislocation density (in the order of 1014 m − 2), uniform dispersion of fine Al4C3 and Al2O3 particles (35 nm in size) and coarse ceramic particles (0.4-1.0 μm).
Abstract
Room-temperature yield strength of powder-metallurgy Al-ceramic particle composite alloys produced by mechanical alloying was analyzed from a viewpoint of microstructure which was characterized by several features: high dislocation density (in the order of 1014 m–2), uniform dispersion of fine Al4C3 and Al2O3 particles (35 nm in size) and coarse ceramic particles (0.4-1.0 μm), and small grain size (0.5 μm). A large portion (more than 80%) of yield strength was concluded to be contributed through dispersion hardening by the fine particles and particle reinforcing by the coarse particles; the contribution was greater through the former mechanism than through the latter one for a given volume fraction of particles. The former mechanism was based on detaching pinned-down dislocations at the fine particles from them, and the latter one on restricting matrix deformation by mechanical constraint around the coarse particles. Impurities in the Al matrix made a modest contribution to strength, probably through solution hardening. These mechanisms raised the strength additively. Work hardening due to a high density of dislocations introduced during processing and grain boundary strengthening due to small grain size were considered not to be principal mechanisms for determining the yield strength.

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Journal ArticleDOI

Mechanically alloyed nanocomposites

TL;DR: In this paper, a review of recent advances in the synthesis and properties of nanocomposites obtained by mechanical alloying has been presented, including metal-based and ceramic-based composites.
Journal ArticleDOI

Mechanical properties of an ultrafine-grained Al-7.5 Pct Mg alloy

TL;DR: In this article, the relationship between the structure and properties of a cryomilled Al-7.5 pct Mg alloy was investigated and the tensile behavior was characterized by high strength, high ductility, and low-strain-hardening.
Journal ArticleDOI

Influence of grain size, solute atoms and second-phase particles on creep behavior of polycrystalline solids

TL;DR: In this paper, the authors used diffusion-controlled creep processes to assess the creep behavior of dispersion and solute hardened materials at coarse and fine grain sizes, and showed that the threshold stress for these materials is a function of the mobile dislocation density, of the dislocation velocity and of the concentration of solute atoms in the dislocations core.
Journal ArticleDOI

Processing and behavior of nanostructured metallic alloys and composites by cryomilling

TL;DR: In this article, the authors reviewed and discussed with particular emphasis on the following topics: nanostructure evolution mechanisms; primary consolidation and secondary processing methods; thermal stability of cryomilled materials; and mechanical behavior of consolidated materials.
Journal ArticleDOI

Friction-stir processing of an AA8026-TiB2-Al2O3 hybrid nanocomposite: Microstructural developments and mechanical properties

TL;DR: In this article, micro-and nano-sized TiB 2 and Al 2 O 3 particles were incorporated separately and simultaneously through the AA8026 aluminum base alloy during multi-pass friction stir processing (FSP) with 100% overlapping to fabricate metal matrix mono and hybrid nanocomposites.
References
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Book

Atlas of stress-strain curves

TL;DR: In this article, the authors present over 600 stress-strain curves for ferrous and nonferrous alloys and show monotonic versus cyclic behavior, effect of strain rate, alloying elements, product forms, deformation mode, grain size, work hardening, temperature, and much, much more.
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