4.7 Article

Length-scale dependent microalloying effects on precipitation behaviors and mechanical properties of Al-Cu alloys with minor Sc addition

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2015.04.035

Keywords

Al-Cu alloy; Microalloying effect; Precipitation behavior; Mechanical properties; Length scale-dependence

Funding

  1. National Natural Science Foundation of China [51321003, 51322104, 51171142, 51201133]
  2. National Basic Research Program of China (973 program) [2010CB631003, 2012CB619600]
  3. 111 Project of China [B06025]
  4. Fundamental Research Funds for the Central Universities
  5. TengFei Scholar Project
  6. Natural Science Foundation of ShaanXi Province of China [2010JK758]

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Heat-treatable Al alloys containing Al-2.5 wt% Cu (Al-Cu) and Al-2.5 wt% Cu-0.3 wt% Sc (Al-Cu-Sc) with different grain length scales, i.e., average grain size > 10 mu m ( defined coarse grained, CG), 1-2 mu m (fine grained, FG), and <1 mu m (ultrafine grained, UFG), were prepared by equal-channel angular pressing (ECAP). The length scale and Sc microalloying effects and their interplay on the precipitation behavior and mechanical properties of the Al-Cu alloys were systematically investigated. In the Al-Cu alloys, intergranular theta-Al2Cu precipitation gradually dominated by sacrificing the intragranular theta'-Al2Cu precipitation with reducing the length scale. Especially in the UFG regime, only intergranular theta-Al2Cu particles were precipitated and intragranular theta'-Al2Cu precipitation was completely disappeared. This led to a remarkable reduction in yield strength and ductility due to insufficient dislocation storage capacity. The minor Sc addition resulted in a microalloying effect in the Al-Cu alloy, which, however, is strongly dependent on the length scale. The smaller is the grain size, the more active is the microalloying effect that promotes the intragranular precipitation while reduces the intergranular precipitation. Correspondingly, compared with their Sc-free counterparts, the yield strength of post-aged CG, FG, and UFG Al-Cu alloys with Sc addition increased by similar to 36 MPa, similar to 56 MPa, and similar to 150 MPa, simultaneously in tensile elongation by similar to 20%, similar to 30%, and similar to 280%, respectively. The grain size-induced evolutions in vacancy concentration/distribution and number density of vacancy-solute/solute-solute clusters and their influences on precipitation nucleation and kinetics have been comprehensively considered to rationalize the length scale-dependent Sc microalloying mechanisms using positron annihilation lifetime spectrum and three dimension atom probe. The increase in ductility was analyzed in the light of Sc microalloying effect and the strength contributions by different strengthening mechanisms was quantified as well. (C) 2015 Elsevier B.V. All rights reserved.

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