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Microstructure and mechanical evolution of cu-2.7be sheets via annealing

  • Yang Liu
  • , Qinwei Wang
  • , Bingqing Yao
  • , Daibo Zhu*
  • , Deshan Chen
  • , Peng Zhang
  • *Corresponding author for this work
  • XiangTan University
  • Nanyang Technological University
  • School of Materials Science and Engineering
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

The microstructure and mechanical properties of cold-rolled Cu-2.7Be sheets under various annealing processes and conditions were investigated in this research. The increased beryllium content in the Cu-2.7Be alloy facilitates the formation of brittle secondary phases. Consequently, the study highlights the functionality of annealed Cu-2.7Be alloys as more favorable dynodes than the traditionally used Cu-2.0Be alloys. The mechanism of recrystallization used for the transformation of Cu-2.7Be alloys was that of continuous static recrystallization (cSRX). Moreover, the relationship between the orientation of the β phases and that of the surrounding Cu-matrix was determined to be (1111)α∥(110)β and (011)α∥(001)β. The β phase has a body-centered cubic (bcc) structure with a = b = c = 0.281 nm. The β phase undergoes a morphology transformation from primitive lath-shaped βparticles to quadrangle-shaped β particles during the annealing process. Such transformations could potentially have an effect on the mechanical properties of Cu-2.7Be sheets. There was a noticeable decline in the yield strength of the Cu-2.7Be after annealing, and the samples annealed at 770 °C for 15 min achieved the elongation with deep and uniform dimples caused by suitable β particle sizes, appropriate grain sizes, and the maximum volume fraction of ∑3 boundaries.

Original languageEnglish
Article number241
JournalMetals
Volume10
Issue number2
DOIs
StatePublished - Feb 2020
Externally publishedYes

Keywords

  • Annealing
  • Cu-2.7Be alloy
  • Mechanical properties
  • Recrystallization
  • β phase

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