TY - JOUR
T1 - Heterogeneous fiberous structured Mg-Zn-Zr alloy with superior strength-ductility synergy
AU - Fu, Wei
AU - Dang, Pengfei
AU - Guo, Shengwu
AU - Ren, Zijun
AU - Fang, Daqing
AU - Ding, Xiangdong
AU - Sun, Jun
N1 - Publisher Copyright:
© 2022
PY - 2023/1/20
Y1 - 2023/1/20
N2 - Here we reported a heterogeneous fiberous structured Mg-5.6Zn-0.6Zr (wt%) alloy obtained by conventional extrusion method, which exhibited high yield strength of ∼ 345 MPa, ultimate tensile strength of ∼ 370 MPa, and high tensile strain of ∼ 20.5%, superior to most of the Mg-Zn based alloys reported so far. The extraordinarily high mechanical properties were mainly attributed to the heterogeneous fiberous structure consisting of alternating coarse- and fine-grain layers. Grains in the different layers grew into the neighboring layers, ensuring a good layer bonding. A high Schmid factor and geometric compatibility factor for pyramidal slip led to full slip transfer between the neighboring coarse grains and fine grains, which could help to release the stress concentration and avoid early fracture. The profuse activated glide dislocations could render the unprecedented high tensile strain. The constraint by the hard fine-grain domains made the soft coarse-grain domains strong like the hard fine-grain domains, as well as the nanoscale precipitates pinning dislocations, contributed to the high strength. The heterogeneous microstructure design was shown to have synergistic improvement in strength-ductility balance, which could be an inspiring strategy to improve mechanical properties of hexagonal close-packed (hcp) metals.
AB - Here we reported a heterogeneous fiberous structured Mg-5.6Zn-0.6Zr (wt%) alloy obtained by conventional extrusion method, which exhibited high yield strength of ∼ 345 MPa, ultimate tensile strength of ∼ 370 MPa, and high tensile strain of ∼ 20.5%, superior to most of the Mg-Zn based alloys reported so far. The extraordinarily high mechanical properties were mainly attributed to the heterogeneous fiberous structure consisting of alternating coarse- and fine-grain layers. Grains in the different layers grew into the neighboring layers, ensuring a good layer bonding. A high Schmid factor and geometric compatibility factor for pyramidal slip led to full slip transfer between the neighboring coarse grains and fine grains, which could help to release the stress concentration and avoid early fracture. The profuse activated glide dislocations could render the unprecedented high tensile strain. The constraint by the hard fine-grain domains made the soft coarse-grain domains strong like the hard fine-grain domains, as well as the nanoscale precipitates pinning dislocations, contributed to the high strength. The heterogeneous microstructure design was shown to have synergistic improvement in strength-ductility balance, which could be an inspiring strategy to improve mechanical properties of hexagonal close-packed (hcp) metals.
KW - Bimodal grain sizes
KW - Heterogeneous fiberous structure
KW - High strength-ductility synergy
KW - Pyramidal dislocations
KW - ZK60 Mg alloy
UR - https://www.scopus.com/pages/publications/85138048381
U2 - 10.1016/j.jmst.2022.06.021
DO - 10.1016/j.jmst.2022.06.021
M3 - 文章
AN - SCOPUS:85138048381
SN - 1005-0302
VL - 134
SP - 67
EP - 80
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -