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Achieving excellent strength-ductility synergy in CoCrFeNi2Al0.3Ti0.25 high entropy alloy via analogous harmonic structure and dual-morphology L12 precipitates strengthening

材料科学 合金 延展性(地球科学) 高熵合金 形态学(生物学) 材料的强化机理 冶金 复合材料 结晶学 遗传学 生物 蠕动 化学
作者
A.X. Li,Kyung Wook Kang,J.S. Zhang,Danni Huang,M.K. Xu,S.K. Liu,Yi Jiang,Gong Li
出处
期刊:Intermetallics [Elsevier BV]
卷期号:185: 108885-108885 被引量:2
标识
DOI:10.1016/j.intermet.2025.108885
摘要

Achieving a superior combination of high strength and ductility in metallic materials remains a key challenge in materials science. In this study, we improve the strength-ductility synergy of a CoCrFeNi-based high entropy alloy (HEA) by designing an analogous harmonic structure via thermomechanical processing . Microstructural analysis reveals that a soft FCC matrix phase is surrounded by a hard L1 2 precipitate phase, forming a typical core-shell heterogeneous structure. The volume fractions of the core and shell regions are 62.8 % and 37.2 %, respectively. Tensile tests at room temperature demonstrate that the HS-HEA exhibits a yield strength of 1018 MPa, an ultimate tensile strength of 1433 MPa, and a total elongation of 29.0 %. The high yield strength arises from significant strain gradients in the core and shell regions, which induced hetero-deformation induced strengthening, grain boundary strengthening, and precipitation strengthening. Meanwhile, the excellent ductility is attributed to dislocation slip, deformation-induced stacking faults, and Lomer-Cottrel locks, with a minor contribution from deformation twins . These mechanisms collectively enhance work-hardening capacity, delaying plastic instability and enabling an exceptional strength-ductility balance. This research presents a novel approach to strengthening HEAs through analogous harmonic structure, which enhances hetero-deformation induced hardening in addition to traditional mechanisms. These findings provide critical insights for designing heterogeneous structural alloys with outstanding mechanical properties. • A novel analogous harmonic heterogeneous structure consisting of a matrix phase surrounded by dual-morphologies L1 2 precipitates was fabricated. • Tensile tests at room temperature revealed that the alloy with the harmonic structure exhibited a yield strength of 1018 MPa, a tensile strength of 1433 MPa, and a total elongation of 29.0 %. • The strengthening mechanism, deformation mechanism, and strain gradient induced by uneven deformation of the alloy were systematically analyzed.
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