材料科学
晶体孪晶
合金
无扩散变换
马氏体
Twip公司
可塑性
金属间化合物
结构材料
晶体塑性
位错
变形(气象学)
高熵合金
微观结构
冶金
复合材料
作者
Rui Feng,You Rao,Chuhao Liu,Xie Xie,Dunji Yu,Yan Chen,Maryam Ghazisaeidi,T. Ungár,Huamiao Wang,Ke An,Peter K. Liaw
标识
DOI:10.1038/s41467-021-23689-6
摘要
Abstract Catastrophic accidents caused by fatigue failures often occur in engineering structures. Thus, a fundamental understanding of cyclic-deformation and fatigue-failure mechanisms is critical for the development of fatigue-resistant structural materials. Here we report a high-entropy alloy with enhanced fatigue life by ductile-transformable multicomponent B2 precipitates. Its cyclic-deformation mechanisms are revealed by real-time in-situ neutron diffraction, transmission-electron microscopy, crystal-plasticity modeling, and Monte-Carlo simulations. Multiple cyclic-deformation mechanisms, including dislocation slips, precipitation strengthening, deformation twinning, and reversible martensitic phase transformation, are observed in the studied high-entropy alloy. Its improved fatigue performance at low strain amplitudes, i.e., the high fatigue-crack-initiation resistance, is attributed to the high elasticity, plastic deformability, and martensitic transformation of the B2-strengthening phase. This study shows that fatigue-resistant alloys can be developed by incorporating strengthening ductile-transformable multicomponent intermetallic phases.
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