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May 6, 2026Metals0 citationsOpen Access

Influence of Annealing Cooling Method Prior to Final Cold Drawing on the Microstructure and Mechanical Properties of Al–Zn–Mg–Cu Alloy Wire

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XGXinyu GaoHuazhong Agricultural UniversityGGGuanjun GaoGeneral Research Institute for Nonferrous Metals (China)KWKai WenGeneral Research Institute for Nonferrous Metals (China)

Key Points

  • This research aims to understand the effect of different cooling methods after annealing on alloy wires' microstructure and mechanical properties.
  • Investigated multiple cooling methods post-annealing in Al–Zn–Mg–Cu alloy wires.
  • Compared microstructure evolution and mechanical properties across different cooling techniques.
  • Evaluated cold heading performance with respect to strength and ductility.
  • Furnace cooling led to coarsening of η′ phase, lowering strength but improving ductility.
  • Near-zero Δr reduced strain localization and cracking risk, while higher Δr increased anisotropy.
  • Post-heat treatment, strength differences were negligible but texture affected elongation.

Abstract

High-quality, large-weight alloy wires (>200 kg per coil) for aerospace fasteners require intermediate annealing prior to final cold drawing, as well as subsequent solution and aging heat treatments, which are critical processes during their manufacturing. However, the evolution of microstructure and mechanical properties during these procedures has not been systematically investigated. In this study, different cooling methods after intermediate annealing were comparatively investigated to clarify their influence on the microstructure evolution, precipitation behavior, and mechanical properties of Al–Zn–Mg–Cu alloy wires. The results revealed that the cold heading performance of alloy wires is determined by the strength–ductility balance, crystallographic texture, and precipitation behavior. Furnace cooling promoted η′ phase coarsening, resulting in lower strength and higher ductility, which enhanced deformation homogeneity and cold heading formability. The near-zero Δr reduced strain localization and cracking susceptibility, whereas higher Δr in water- and air-cooling samples increased anisotropy and cracking tendency. After heat treatment, strength differences became negligible, whereas elongation remained texture dependent, with the weaker texture in the furnace-cooling sample yielding superior ductility.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69faa1eb04f884e66b532ac0https://doi.org/10.3390/met16050495
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