TY - JOUR
T1 - On the grain size dependence of competing deformation mechanisms in a CrCoNi medium entropy alloy
AU - Zhu, Li
AU - Li, Guangya
AU - Dong, Weixia
AU - Zhang, Jianyang
AU - Ma, Yuemin
AU - He, Haiyan
AU - Lan, Si
AU - Wu, Zhenduo
AU - Li, Xiaohu
AU - Yang, Tao
AU - Wang, Xun Li
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/5/1
Y1 - 2025/5/1
N2 - Grain refinement is an effective approach to tailoring the deformation mechanism and thus the mechanical properties of a material. In this study, the deformation behaviors of the CrCoNi medium entropy alloy with different grain sizes were investigated by in-situ neutron diffraction and transmission electron microscopy observations. For the coarse-grained CrCoNi alloy, the initial plastic deformation was driven by dislocation slip, while stacking faults and twinning became activated at a later stage. The critical stress for stacking faults in coarse-grained samples exhibited a weaker grain size sensitivity than that of dislocation slip. As a result, below a grain size threshold, the critical stress needed to trigger the dislocation slip caught up with that of stacking faults. It was shown that for CrCoNi, when the grain size was below ∼1.5 μm, all the three deformation modes, namely, dislocation slip, stacking faults, and twinning, were activated simultaneously, which resulted in a grain-size dependence deviating from the Hall-Petch relationship due to the extra strengthening at yielding. The contributions from dislocations and planar faults to the work hardening were quantified, which revealed a dominant role of dislocations in the hardening behaviors of the CrCoNi alloy. However, the relative magnitude of these contributions changed as the grain size was reduced, with the contribution from planar faults, especially the stacking faults, becoming increasingly significant.
AB - Grain refinement is an effective approach to tailoring the deformation mechanism and thus the mechanical properties of a material. In this study, the deformation behaviors of the CrCoNi medium entropy alloy with different grain sizes were investigated by in-situ neutron diffraction and transmission electron microscopy observations. For the coarse-grained CrCoNi alloy, the initial plastic deformation was driven by dislocation slip, while stacking faults and twinning became activated at a later stage. The critical stress for stacking faults in coarse-grained samples exhibited a weaker grain size sensitivity than that of dislocation slip. As a result, below a grain size threshold, the critical stress needed to trigger the dislocation slip caught up with that of stacking faults. It was shown that for CrCoNi, when the grain size was below ∼1.5 μm, all the three deformation modes, namely, dislocation slip, stacking faults, and twinning, were activated simultaneously, which resulted in a grain-size dependence deviating from the Hall-Petch relationship due to the extra strengthening at yielding. The contributions from dislocations and planar faults to the work hardening were quantified, which revealed a dominant role of dislocations in the hardening behaviors of the CrCoNi alloy. However, the relative magnitude of these contributions changed as the grain size was reduced, with the contribution from planar faults, especially the stacking faults, becoming increasingly significant.
KW - Deformation mechanism
KW - Hall-Petch effect
KW - In-situ neutron diffraction
KW - Medium-entropy alloy
KW - Stacking faults
UR - https://www.scopus.com/pages/publications/86000652842
U2 - 10.1016/j.actamat.2025.120907
DO - 10.1016/j.actamat.2025.120907
M3 - 文章
AN - SCOPUS:86000652842
SN - 1359-6454
VL - 289
JO - Acta Materialia
JF - Acta Materialia
M1 - 120907
ER -