Lin Gongxi, Guo Ruipeng, Shi Xiaohui, Han Lina, Qiao Junwei
College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, China.
Key Laboratory of Interface Science and Engineering in Advanced Materials, Ministry of Education, Taiyuan University of Technology, Taiyuan 030024, China.
Entropy (Basel). 2022 Dec 5;24(12):1777. doi: 10.3390/e24121777.
Lightweight multiprincipal element alloys (MPEAs) are promising candidates for potential application as engineering materials due to their high strength and low density. In this work, lightweight TiAlV and TiAlV MPEAs were fabricated via vacuum arc melting. The phases of the TiAlV alloys consisted of a BCC phase and a small amount of B2 phase while the TiAlV alloys displayed a dual-phase structure with BCC and HCP phases. The different phase compositions led to differences in their mechanical properties. When the temperature changed from 298 K to 77 K, the strength of the alloys further increased and maintained a certain plasticity. This is attributed to the increasing lattice friction stress at cryogenic temperature. TEM observation demonstrated that dislocation played a crucial role in plastic deformation for both the TiAlV and TiAlV alloys. In addition, TiAlV exhibited significant work-hardening capabilities. By analyzing the strengthening mechanism of the alloys, the theoretical yield strength was calculated, and the results agreed with the experimental values. The present results provide new insight into developing lightweight MPEAs containing Ti and Al.
轻质多主元合金(MPEAs)因其高强度和低密度而有望成为工程材料的潜在应用候选材料。在本工作中,通过真空电弧熔炼制备了轻质TiAlV和TiAlV多主元合金。TiAlV合金的相由体心立方(BCC)相和少量B2相组成,而TiAlV合金呈现出具有BCC相和六方密排(HCP)相的双相结构。不同的相组成导致了它们力学性能的差异。当温度从298 K变化到77 K时,合金的强度进一步提高并保持一定的塑性。这归因于低温下晶格摩擦应力的增加。透射电子显微镜(TEM)观察表明,位错在TiAlV和TiAlV合金的塑性变形中起关键作用。此外,TiAlV表现出显著的加工硬化能力。通过分析合金的强化机制,计算了理论屈服强度,结果与实验值相符。目前的结果为开发含Ti和Al的轻质多主元合金提供了新的见解。