| Literature DB >> 36109370 |
Yuhang Zhang1, Jianfei Xu1, Yiqun Hu1, Jiejie Li1,2, Suhang Ding1, Re Xia3.
Abstract
Nanoindentation tests are performed by molecular dynamics simulation to explore the mechanical properties of nanocrystalline B2 CuZr shape memory alloys with average grain sizes ranging from 6 to 18 nm. Some paramount aspects are monitored, including indentation force-depth curve, hardness, yield strength, and elastic recovery. The results demonstrate an inverse Hall-Petch effect, i.e., the hardness decreases with the decrease in grain size. For the single crystalline B2 CuZr, dislocation nucleation and propagation are the major plastic mechanisms. However, grain cleavage, grain boundary compression, and grain rotation prevail over the plastic behaviors of nanocrystalline B2 CuZr alloys. The elastic recovery becomes stronger with the increase in grain size. Besides, the effects of temperature, indenter size, and indenter speed on the nanoindentation responses are evaluated quantitively.Entities:
Keywords: Hardness; Mechanical properties; Molecular dynamics; Nanoindentation; Shape memory alloys
Year: 2022 PMID: 36109370 DOI: 10.1007/s00894-022-05320-7
Source DB: PubMed Journal: J Mol Model ISSN: 0948-5023 Impact factor: 2.172