4.7 Article

High thermal stability and excellent mechanical properties of ultrafine-grained high-purity copper sheets subjected to asymmetric cryorolling

Journal

MATERIALS CHARACTERIZATION
Volume 153, Issue -, Pages 34-45

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.matchar.2019.04.034

Keywords

High purity copper; Asymmetric rolling; Asymmetric cryorolling; Low temperature annealing; Mechanical property; Thermal stability

Funding

  1. National Natural Science Foundation of China [51674303]
  2. National Youth Thousand Plan Program of China
  3. Huxiang High-Level Talent Gathering Project of HUNAN Province [2018RS3015]
  4. Innovation Driven Program of Central South University [2019CX006]
  5. Research Fund of the Key Laboratory of High Performance Complex Manufacturing at Central South University

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For most ultrafine-grained metals, the yield stress increases with finer grain size, but the thermal stability reduces. In this study, high purity (99.999%) copper sheets were fabricated using three different techniques: symmetric rolling, asymmetric rolling and asymmetric cryorolling. In each case, the sheets were annealed at a temperature ranging from 50 degrees C to 125 degrees C for 1 h. Their mechanical properties were tensile-tested using dog-bone samples, and their microstructure evolution was examined using electron backscatter diffraction and transmission electron microscopy. The results show that the asymmetric-cryorolled copper sheets have finer grains and higher tensile strength, and better thermal stability compared with the copper sheets subjected to symmetric rolling and asymmetric rolling and low-temperature annealing. The finer grains in copper sheets subjected to asymmetric cryorolling result from the additional shear strain and severe plastic deformation at low temperature. The improvement in the thermal stability may be due mainly to the vacancy clusters, small laminate thickness, low-angle grain boundary and high misorientation angle in asymmetric cryorolled samples. These results can provide significant insights into the development of ultrafine-grained metal sheets with both excellent mechanical properties and high thermal stability.

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