材料科学
微观结构
软化
合金
打滑(空气动力学)
复合材料
位错
高熵合金
可塑性
变形机理
固溶强化
耐火材料(行星科学)
热力学
物理
作者
Guangquan Tang,Xu Shao,Jingyu Pang,Yu Ji,Aimin Wang,Jinguo Li,Haifeng Zhang,Hongwei Zhang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2023-12-11
卷期号:16 (24): 7592-7592
被引量:3
摘要
The NbTiAlZrHfTaMoW refractory high-entropy alloy (RHEA) system with the structure of the B2 matrix (antiphase domains) and antiphase domain boundaries was firstly developed. We conducted the mechanical properties of the RHEAs at 298 K, 1023 K, 1123 K, and 1223 K, as well as typical deformation characteristics. The RHEAs with low density (7.41~7.51 g/cm3) have excellent compressive-specific yield strength (σYS/ρ) at 1023 K (~131 MPa·cm3/g) and 1123 K (~104.2 MPa·cm3/g), respectively, which are far superior to most typical RHEAs. And, they still keep appropriate plastic deformability at room temperature (ε > 0.35). The superior specific yield strengths are mainly attributed to the solid solution strengthening induced by the Zr element. The formation of the dislocation slip bands with [111](101_) and [111](112_) directions and their interaction provide considerable plastic deformation capability. Meanwhile, dynamic recrystallization and dislocation annihilation accelerate the continuous softening after yielding at 1123 K.
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