合金
马氏体
无扩散变换
高熵合金
延展性(地球科学)
极限抗拉强度
可塑性
沉淀硬化
降水
加工硬化
材料科学
硬化(计算)
变形(气象学)
冶金
复合材料
微观结构
物理
蠕动
气象学
图层(电子)
作者
Jianyang Zhang,Zhankun Zhao,Qian Li,Junhua Luan,C.T. Liu,Yilu Zhao,Tao Yang
标识
DOI:10.1016/j.apmate.2023.100113
摘要
Nanoprecipitation strengthening has been widely adopted as an effective way to design high-strength alloys, which generally leads to the loss of ductility. Here we unveil the unique bifunctionality of L12-structured nanoprecipitates in a FeCoNiAlTi-type high entropy alloy , enabling the combined increase of tensile strength and ductility. Results show that as-quenched precipitate-free matrix alloys undergo thermally-induced martensite transformation and form the body-centered cubic martensite phase with limited tensile ductility. In strong contrast, when introducing the dense coherent L12-type nanoprecipitates, the face-centered cubic matrix is temporarily stabilized, which in turn promotes the microbands-induced plasticity associated with stress-induced martensite transformation upon deformation. This allows us to achieve significantly improved work hardening capability and excellent plastic deformation stability at a high-strength level. These new findings reshape our understanding of the precipitation strengthening and could provide useful guidance for developing high-performance alloys by regulating the coherent nanoprecipitate and martensitic phase transformation.
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