TY - JOUR
T1 - Strain rate sensitivity and deformation behavior in a Ti-based bulk metallic glass composite
AU - Zhai, Haimin
AU - Xu, Yuhao
AU - Du, Yin
AU - Wang, Haifeng
AU - Liu, Feng
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2017/9/1
Y1 - 2017/9/1
N2 - The Ti45Zr25Nb6Sn2Cu5Be17 bulk metallic glass composite was investigated by uniaxial quasi-static compression and tension tests under strain rates from 1 × 10− 4 s− 1 to 1 × 10− 2 s− 1 at the room temperature. The deformation behavior was characterized by analyzing the lateral and fracture surfaces. With the increase of strain rate, the yielding stress and plasticity decrease significantly, indicating negative strain rate sensitivity. At higher strain rates, the thermal softening effect is more prominent and the yielding stress is lower, while lower strain rates, the shear band toughness of the dendrites is higher than that of the glass matrix. Then the dislocations have sufficient time to be generated, multiplied and aggregated, thereby the shear banding can be retarded and hindered efficiently by dendrites. Furthermore, the primary shear bands are able to block more effectively the secondary ones, which results in more uniform distribution of plastic strain and thereby higher plasticity. The current work shows that the coordination of the shear band toughness of the dendrites and the glass matrix and the stable extension of the shear bands are of primary importance for obtaining excellent mechanical properties.
AB - The Ti45Zr25Nb6Sn2Cu5Be17 bulk metallic glass composite was investigated by uniaxial quasi-static compression and tension tests under strain rates from 1 × 10− 4 s− 1 to 1 × 10− 2 s− 1 at the room temperature. The deformation behavior was characterized by analyzing the lateral and fracture surfaces. With the increase of strain rate, the yielding stress and plasticity decrease significantly, indicating negative strain rate sensitivity. At higher strain rates, the thermal softening effect is more prominent and the yielding stress is lower, while lower strain rates, the shear band toughness of the dendrites is higher than that of the glass matrix. Then the dislocations have sufficient time to be generated, multiplied and aggregated, thereby the shear banding can be retarded and hindered efficiently by dendrites. Furthermore, the primary shear bands are able to block more effectively the secondary ones, which results in more uniform distribution of plastic strain and thereby higher plasticity. The current work shows that the coordination of the shear band toughness of the dendrites and the glass matrix and the stable extension of the shear bands are of primary importance for obtaining excellent mechanical properties.
KW - Bulk metallic glass composite
KW - Shear banding behavior
KW - Shear bands toughness
KW - Strain rate sensitivity
KW - Ti-based alloy
UR - https://www.scopus.com/pages/publications/85019868653
U2 - 10.1016/j.jnoncrysol.2017.05.032
DO - 10.1016/j.jnoncrysol.2017.05.032
M3 - 文章
AN - SCOPUS:85019868653
SN - 0022-3093
VL - 471
SP - 128
EP - 136
JO - Journal of Non-Crystalline Solids
JF - Journal of Non-Crystalline Solids
ER -