Shape memory and superelasticity in polycrystalline Cu-Al-Ni microwires
We report a strategy to significantly improve the ductility and achieve large superelastic and shape memory strains in polycrystalline Cu–Al–Ni shape memory alloys that are normally brittle. We use a liquid-phase (Taylor) wire forming process to obtain microwires of 10–150 μm diameter with a bamboo...
Main Authors: | Chen, Ying, Zhang, Xuexi, Dunand, David C., Schuh, Christopher A. |
---|---|
Other Authors: | Massachusetts Institute of Technology. Department of Materials Science and Engineering |
Format: | Article |
Language: | en_US |
Published: |
American Institute of Physics
2012
|
Online Access: | http://hdl.handle.net/1721.1/69218 https://orcid.org/0000-0001-9856-2682 |
Similar Items
-
Superelasticity and fatigue in oligocrystalline shape memory alloy microwires
by: Ueland, Stian M., et al.
Published: (2016) -
Surface Roughness-Controlled Superelastic Hysteresis in Shape Memory Microwires
by: Ueland, Stian Melhus, et al.
Published: (2017) -
Size effects in shape memory alloy microwires
by: Chen, Ying, et al.
Published: (2016) -
Nonlocal Superelastic Model of Size-Dependent Hardening and Dissipation in Single Crystal Cu-Al-Ni Shape Memory Alloys
by: Qiao, Lei, et al.
Published: (2011) -
The effect of annealing on the microstructure of Cu-Al-Ni-Mn shape memory alloy microwires
by: Shukla, Keerti
Published: (2016)