晶体孪晶
材料科学
共晶体系
合金
硬化(计算)
高熵合金
变形机理
延展性(地球科学)
加工硬化
冶金
应变硬化指数
复合材料
蠕动
微观结构
图层(电子)
作者
Peijian Shi,Yunbo Zhong,Yi Li,Weili Ren,Tianxiang Zheng,Zhe Shen,Bing Yang,Jianchao Peng,Pengfei Hu,Yong Zhang,Peter K. Liaw,Yuntian Zhu
标识
DOI:10.1016/j.mattod.2020.09.029
摘要
High strength of materials usually comes with low ductility due to the lost or short-lived strain hardening. Here, we uncover a sequentially-activated multistage strain hardening (SMSH) that allows for sustained and effective strain-hardening capability in strong ultrafine-grained eutectic high-entropy alloy (EHEA). Consequently, exceptional ductility is realized in an ultrafine-grained EHEA, accompanied with high ultimate strength. We demonstrate that the SMSH is derived from a coordinated three-level design on structural heterogeneity, grain-size control, and intragranular composition modification, which enables the sequential activation of stress-dependent multiple hardening mechanisms. Furthermore, despite the well-known low twinning propensity due to ultrafine grains and medium-to-high stacking fault energies of prototype EHEAs, our coordinated design sequentially activates three types of deformation twinning to assist this SMSH. This work sheds light on the SMSH effect assisted by multi-type twinning previously unexpected in ultrafine-grained EHEAs, and thereby represents a promising route for improving ductility of high-strength materials.
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