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一种纳米结构Al-Zn-Mg-Cu-Zr-Sc合金在自然时效下的微观结构与力学性能

Microstructures and Mechanical Properties of a Nanostructured Al-Zn-Mg-Cu-Zr-Sc Alloy under Natural Aging.

作者信息

Shen Gaoliang, Xiang Zhilei, Ma Xiaozhao, Huang Jingcun, Li Jihao, Wang Bing, Zhou Zongyi, Chen Yilan, Chen Ziyong

机构信息

Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing 100124, China.

Aviation Industry of China Manufacturing Technology Institute, Beijing 100015, China.

出版信息

Materials (Basel). 2023 Jun 13;16(12):4346. doi: 10.3390/ma16124346.

Abstract

Nanocrystalline (NC) structure can lead to the considerable strengthening of metals and alloys. Obtaining appropriate comprehensive mechanical properties is always the goal of metallic materials. Here, a nanostructured Al-Zn-Mg-Cu-Zr-Sc alloy was successfully processed by high-pressure torsion (HPT) followed by natural aging. The microstructures and mechanical properties of the naturally aged HPT alloy were analyzed. The results show that the naturally aged HPT alloy primarily consists of nanoscale grains (~98.8 nm), nano-sized precipitates (20-28 nm in size), and dislocations (1.16 × 10 m), and exhibits a high tensile strength of 851 ± 6 MPa and appropriate elongation of 6.8 ± 0.2%. In addition, the multiple strengthening modes that were activated and contributed to the yield strength of the alloy were evaluated according to grain refinement strengthening, precipitation strengthening, and dislocation strengthening, and it is shown that grain refinement strengthening and precipitation strengthening are the main strengthening mechanisms. The results of this study provide an effective pathway for achieving the optimal strength-ductility match of materials and guiding the subsequent annealing treatment.

摘要

纳米晶(NC)结构可使金属和合金显著强化。获得合适的综合力学性能一直是金属材料的目标。在此,通过高压扭转(HPT)并随后自然时效成功制备了一种纳米结构的Al-Zn-Mg-Cu-Zr-Sc合金。对自然时效的HPT合金的微观结构和力学性能进行了分析。结果表明,自然时效的HPT合金主要由纳米级晶粒(约98.8纳米)、纳米尺寸析出相(尺寸为20 - 28纳米)和位错(1.16×10米)组成,具有851±6兆帕的高抗拉强度和6.8±0.2%的合适伸长率。此外,根据晶粒细化强化、析出强化和位错强化评估了激活并有助于合金屈服强度的多种强化模式,结果表明晶粒细化强化和析出强化是主要强化机制。本研究结果为实现材料的最佳强度 - 延展性匹配以及指导后续退火处理提供了有效途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/10305291/8f045a4f783d/materials-16-04346-g001.jpg

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