Composition-dependent slip planarity in mechanically-stable face centered cubic complex concentrated alloys and its mechanical effects

材料科学 晶体孪晶 层错能 电子背散射衍射 微观结构 极限抗拉强度 打滑(空气动力学) 无扩散变换 应变硬化指数 延展性(地球科学) 复合材料 硬化(计算) 马氏体 冶金 结晶学 蠕动 热力学 图层(电子) 化学 物理
作者
Feng He,Shaolou Wei,Jaclyn Leigh Cann,Zhijun Wang,Jincheng Wang,Cemal Cem Taşan
出处
期刊:Acta Materialia [Elsevier]
卷期号:220: 117314-117314 被引量:27
标识
DOI:10.1016/j.actamat.2021.117314
摘要

In metallic materials, enhancing strain hardening capacity positively affects ductility, fracture toughness, ultimate tensile strength, and other properties. Thus, activating mechanically-induced martensitic transformation or twinning mechanisms has been a captivating goal in the design of steels, titanium alloys, cobalt alloys, complex concentrated alloys (CCAs) and others, through modifications to composition or thermo-mechanical processing. Here instead, we focus on the most basic strain hardening effect, arising from dislocation kinematics, and interactions. For this purpose, we designed two model face centered cubic (FCC) CCAs, Ni2CoCrFe and Ni2CoCrFeTi0.2Al0.1. Both alloys develop single, mechanically-stable, FCC phase microstructures upon processing. Mechanical tests of these alloys reveal that the Al and Ti addition enhances the strain hardening capacity, leading to significant increases in strength and ductility. Microstructure analyses based on electron channeling contrast imaging (ECCI), electron-backscatter diffraction (EBSD), and transmission electron microscopy (TEM) confirm the absence of mechanically-induced twinning and martensitic transformation effects, revealing instead a transition from wavy slip to planar slip. In-situ synchrotron XRD tensile tests are used to discuss the origin of the dislocation glide mode transition and the effects on strain hardening. Based on these analyses, the increased degree of short-range ordering (SRO), rather than the changes in stacking fault energy (SFE), is proposed as the main cause for this transition, and the corresponding effects on strain hardenability.
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