Size-dependent mechanical responses of twinned Nanocrystalline HfNbZrTi refractory high-entropy alloy

被引:2
|
作者
Wu, Yihan [1 ]
Bai, Zhiwen [1 ]
Yan, Gaosheng [1 ]
Yu, Wenshan [1 ]
Shen, Shengping [1 ]
机构
[1] Xi An Jiao Tong Univ, Sch Aerosp Engn, State Key Lab Strength & Vibrat Mech Struct, Shaanxi Engn Lab Vibrat Control Aerosp Struct, Xian 710049, Peoples R China
基金
中国国家自然科学基金;
关键词
High-entropy alloys; Hall-Petch effect; Nanocrystalline materials; Twin boundary; Plastic deformation; STACKING-FAULT ENERGIES; HALL-PETCH RELATIONSHIP; TENSILE PROPERTIES; MAXIMUM STRENGTH; MICROSTRUCTURE; EVOLUTION; BEHAVIOR; DUCTILE;
D O I
10.1016/j.ijrmhm.2024.106885
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Atomistic simulations are performed to study the size-dependent mechanical responses of HfNbZrTi refractory high-entropy alloy (RHEA) containing ultrafine grains and highly oriented twin boundaries (TBs). The strength and flow stress of nanocrystalline RHEA (NC-RHEA) under tensile loadings are explored versus decreasing grain size d . The transition from classical Hall-Petch (HP) strengthening to inverse HP softening at a critical grain size d c = 5.91 nm is attributed to the change of plastic deformation mechanisms from dislocation emission and phase transformation to grain boundary (GB) activities. Besides, the intragranular TBs considerably enhance the strength of nanotwinned RHEA (NT-RHEA); the enhancing effect reduces with decreasing twin thickness lambda . As the volume fraction of GB increases with decreasing d , GB activities dominate the plasticity of NT-RHEA and cause comparable mechanical properties with NC-RHEA. Moreover, the influences of dislocation glide, phase transformation and twinning on the mechanical properties of RHEA are quantified and separately analyzed to further verify our simulation results. Findings of this study not only promote insights into the nanostructure-property relation of HfNbZrTi, but also shed the light on performance enhancement through nanostructural design.
引用
收藏
页数:12
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