材料科学
合金
极限抗拉强度
铝
固溶强化
格子(音乐)
固溶体
失真(音乐)
位错
微观结构
Atom(片上系统)
晶格常数
热力学
复合材料
冶金
衍射
嵌入式系统
光学
声学
计算机科学
CMOS芯片
光电子学
放大器
物理
作者
Jitesh Kumar,Albert Linda,M. Sadhasivam,K.G. Pradeep,N.P. Gurao,Krishanu Biswas
出处
期刊:Acta Materialia
[Elsevier]
日期:2022-07-28
卷期号:238: 118208-118208
被引量:39
标识
DOI:10.1016/j.actamat.2022.118208
摘要
The effect of aluminum addition to the Cantor alloy in the composition range of 0.25–5 atomic percent towards solid solution strengthening of supposedly single-phase HEA was investigated using experiments and first principle simulation-guided constitutive modeling. The continuous increase in yield and tensile strength without significant change in ductility is observed for the alloys with increasing aluminum content. The constitutive modeling of the strengthening has been performed using traditional as well as recently developed models for solid solution strengthening. It indicated a significant contribution (50% increases from Cantor alloy to Cantor alloy containing 5 atom % Al) of solid solution strengthening due to the addition of Al having a relatively larger size (̴12 %) than the size of elements in the Cantor alloy, causing severe local lattice distortion. The experimental yield strength could be best explained based on the large apparent distortion volume of the Al atom acting as a stronger barrier to dislocation motion based on the Varvenne model by incorporating the lattice distortion. First-principles simulations indicate that local and global lattice distortion contributes to an increase in the strength by strong pinning of dislocations by aluminum atom leading to high strength.
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