TY - JOUR
T1 - Effect of solid-solution strengthening on deformation mechanisms and strain hardening in medium-entropy V1-xCrxCoNi alloys
AU - Chung, Hyun
AU - Kim, Dae Woong
AU - Cho, Woo Jin
AU - Han, Heung Nam
AU - Ikeda, Yuji
AU - Ishibashi, Shoji
AU - Körmann, Fritz
AU - Sohn, Seok Su
N1 - Funding Information:
This work was financially supported by the POSCO Science Fellowship of POSCO TJ Park Foundation, the National Research Foundation of Korea (No. NRF-2020R1C1C1003554 ), the Creative Materials Discovery Program of the National Research Foundation of Korea (NRF) funded by the Ministry of Science and ICT (No. NRF-2016M3D1A1023384 ) and the Korea Institute for Advancement of Technology (KIAT) grant funded by the Korea Government (MOTIE, P0002019, The Competency Development Program for Industry Specialist). F.K. gratefully acknowledges support from the German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) under the priority program 2006 “CCA – HEA". We thank Andrei V. Ruban for providing the code to generate SQSs.
Publisher Copyright:
© 2021
PY - 2022/5/10
Y1 - 2022/5/10
N2 - High- and medium-entropy alloys (HEAs and MEAs) possess high solid-solution strength. Numerous investigations have been conducted on its impact on yield strength, however, there are limited reports regarding the relation between solid-solution strengthening and strain-hardening rate. In addition, no attempt has been made to account for the dislocation-mediated plasticity; most works focused on twinning- or transformation-induced plasticity (TWIP or TRIP). In this work we reveal the role of solid-solution strengthening on the strain-hardening rate via systematically investigating evolutions of deformation structures by controlling the Cr/V ratio in prototypical V1-xCrxCoNi alloys. Comparing the TWIP of CrCoNi with the dislocation slip of V0.4Cr0.6CoNi, the hardening rate of CrCoNi was superior to slip-band refinements of V0.4Cr0.6CoNi due to the dynamic Hall-Petch effect. However, as V content increased further to V0.7Cr0.3CoNi and VCoNi, their rate of slip-band refinement in V0.7Cr0.3CoNi and VCoNi with high solid-solution strength surpassed that of CrCoNi. Although it is generally accepted in conventional alloys that deformation twinning results in a higher strain-hardening rate than dislocation-mediated plasticity, we observed that the latter can be predominant in the former under an activated huge solid-solution strengthening effect. The high solid-solution strength lowered the cross-slip activation and consequently retarded the dislocation rearrangement rate, i.e., the dynamic recovery. This delay in the hardening rate decrease, therefore, increased the strain-hardening rate, results in an overall higher strain-hardening rate of V-rich alloys.
AB - High- and medium-entropy alloys (HEAs and MEAs) possess high solid-solution strength. Numerous investigations have been conducted on its impact on yield strength, however, there are limited reports regarding the relation between solid-solution strengthening and strain-hardening rate. In addition, no attempt has been made to account for the dislocation-mediated plasticity; most works focused on twinning- or transformation-induced plasticity (TWIP or TRIP). In this work we reveal the role of solid-solution strengthening on the strain-hardening rate via systematically investigating evolutions of deformation structures by controlling the Cr/V ratio in prototypical V1-xCrxCoNi alloys. Comparing the TWIP of CrCoNi with the dislocation slip of V0.4Cr0.6CoNi, the hardening rate of CrCoNi was superior to slip-band refinements of V0.4Cr0.6CoNi due to the dynamic Hall-Petch effect. However, as V content increased further to V0.7Cr0.3CoNi and VCoNi, their rate of slip-band refinement in V0.7Cr0.3CoNi and VCoNi with high solid-solution strength surpassed that of CrCoNi. Although it is generally accepted in conventional alloys that deformation twinning results in a higher strain-hardening rate than dislocation-mediated plasticity, we observed that the latter can be predominant in the former under an activated huge solid-solution strengthening effect. The high solid-solution strength lowered the cross-slip activation and consequently retarded the dislocation rearrangement rate, i.e., the dynamic recovery. This delay in the hardening rate decrease, therefore, increased the strain-hardening rate, results in an overall higher strain-hardening rate of V-rich alloys.
KW - Medium-entropy alloy
KW - Solid-solution strength
KW - Stacking fault energy
KW - Strain-hardening rate
KW - Tensile property
UR - http://www.scopus.com/inward/record.url?scp=85118864514&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2021.07.042
DO - 10.1016/j.jmst.2021.07.042
M3 - Article
AN - SCOPUS:85118864514
SN - 1005-0302
VL - 108
SP - 270
EP - 280
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -