The effect of carbon on the microstructures, mechanical properties, and deformation mechanisms of thermo-mechanically treated Fe40.4Ni11.3Mn34.8Al17.5Cr6 high entropy alloys

被引:244
作者
Wang, Zhangwei [1 ]
Baker, Ian [1 ]
Guo, Wei [2 ]
Poplawsky, Jonathan D. [2 ]
机构
[1] Thayer Sch Engn, 14 Engn Dr, Hanover, NH 03755 USA
[2] Oak Ridge Natl Lab, Ctr Nanophase Mat Sci, Oak Ridge, TN 37831 USA
关键词
High entropy alloy; Microstructures; Mechanical properties; Dislocation structures; Strain hardening; INDUCED PLASTICITY; HIGH-STRENGTH; DISLOCATION SUBSTRUCTURE; HARDENING BEHAVIOR; EVOLUTION; STRAIN; SLIP; STEELS; RECRYSTALLIZATION; METAL;
D O I
10.1016/j.actamat.2016.12.074
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The effects of cold rolling followed by annealing on the mechanical properties and dislocation substructure evolution of undoped and 1.1 at. % carbon-doped Fe40.4Ni11.3Mn34.8Al7.5Cr6 high entropy alloys (HEAs) have been investigated. X-ray diffraction, scanning electron microscopy (SEM), transmission electron microscopy (TEM) and atom probe tomography (APT) were employed to characterize the microstructures. The as-cast HEAs were coarse-grained and single phase f.c.c., whereas the thermomechanical treatment caused recrystallization (to fine grain sizes) and precipitation (a B2 phase for the undoped HEA; and a B2 phase, and M23C6 and M7C3 carbides for the C-doped HEA). Carbon, which was found to have segregated to the grain boundaries using APT, retarded recrystallization. The reduction in grain size resulted in a sharp increase in strength, while the precipitation, which produced only a small increase in strength, probably accounted for the small decrease in ductility for both undoped and C doped HEAs. For both undoped and C-doped HEAs, the smaller grain-sized material initially exhibited higher strain hardening than the coarse-grained material but showed a much lower strain hardening at large tensile strains. Wavy slip in the undoped HEAs and planar slip in C-doped HEM were found at the early stages of deformation irrespective of grain size. At higher strains, dislocation cell structures formed in the 19 urn grain-sized undoped HEA, while microbands formed in the 23 mu m grain-sized C-doped HEA. In contrast, localized dislocation clusters were found in both HEM at the finest grain sizes (5 mu m). The inhibition of grain subdivision by the grain boundaries and precipitates lead to the transformation from regular dislocation configurations consisting of dislocation-cells and microbands to irregular dislocation configurations consisting of localized dislocation clusters, which further account for the decrease in ductility. Investigation of the formation mechanism and strain hardening of dislocation cells and microbands could benefit future structural material design. (C) 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
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页码:346 / 360
页数:15
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