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机械合金化和放电等离子烧结制备的纳米晶Al-Zn-Mg-Cu合金的微观结构与力学性能

Microstructure and Mechanical Properties of Nanocrystalline Al-Zn-Mg-Cu Alloy Prepared by Mechanical Alloying and Spark Plasma Sintering.

作者信息

Cheng Jingfan, Cai Qizhou, Zhao Bingyi, Yang Songfeng, Chen Fei, Li Bing

机构信息

State Key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, China.

School of Mechanical Engineering, Wuhan Vocational College of Software and Engineering, Wuhan 430205, China.

出版信息

Materials (Basel). 2019 Apr 16;12(8):1255. doi: 10.3390/ma12081255.

Abstract

In this study, Al, Zn, Mg and Cu elemental metal powders were chosen as the raw powders. The nanocrystalline Al-7Zn-2.5Mg-2.5Cu bulk alloy was prepared by mechanical alloying and spark plasma sintering. The effect of milling time on the morphology and crystal structure was investigated, as well as the microstructure and mechanical properties of the sintered samples. The results show that Zn, Mg and Cu alloy elements gradually dissolved in α-Al with the extension of ball milling time. The morphology of the ball-milled Al powder exhibited flaking, crushing and welding. When the ball milling time was 30 h, the powder particle size was 2-5 μm. The α-Al grain size was 23.2 nm. The lattice distortion was 0.156% causing by the solid solution of the metal atoms. The grain size of ball-milled powder grew during the spark plasma sintering process. The grain size of α-Al increased from 23.2 nm in the powder to 53.5 nm in the sintered sample during the sintering process after 30 h of ball milling. At the same time, the bulk alloy precipitated micron-sized AlCu and nano-sized MgZn in the α-Al crystal. With the extension of ball milling time, the compression strength, yield strength and Vickers hardness of spark plasma sintering (SPS) samples increased, while the engineering strain decreased. The compression strength, engineering strain and Vickers hardness of sintered samples prepared by 30 h milled powder were ~908 MPa, ~8.1% and ~235 HV, respectively. The high strength of the nanocrystalline Al-7Zn-2.5Mg-2.5Cu bulk alloy was attributed to fine-grained strengthening, dislocation strengthening and Orowan strengthening due to the precipitated second phase particles.

摘要

在本研究中,选择Al、Zn、Mg和Cu元素金属粉末作为原料粉末。通过机械合金化和放电等离子烧结制备了纳米晶Al-7Zn-2.5Mg-2.5Cu块体合金。研究了球磨时间对形态和晶体结构的影响,以及烧结样品的微观结构和力学性能。结果表明,随着球磨时间的延长,Zn、Mg和Cu合金元素逐渐溶解在α-Al中。球磨Al粉的形态呈现出片状、破碎和焊接。当球磨时间为30 h时,粉末粒径为2-5μm。α-Al晶粒尺寸为23.2 nm。金属原子固溶引起的晶格畸变率为0.156%。球磨粉末的晶粒尺寸在放电等离子烧结过程中长大。球磨30 h后的烧结过程中,α-Al的晶粒尺寸从粉末中的23.2 nm增加到烧结样品中的53.5 nm。同时,块体合金在α-Al晶体内析出微米级的AlCu和纳米级的MgZn。随着球磨时间的延长,放电等离子烧结(SPS)样品的抗压强度、屈服强度和维氏硬度增加,而工程应变减小。由30 h球磨粉末制备的烧结样品的抗压强度、工程应变和维氏硬度分别约为908 MPa、约8.1%和约235 HV。纳米晶Al-7Zn-2.5Mg-2.5Cu块体合金的高强度归因于细晶强化、位错强化以及析出的第二相粒子引起的奥罗万强化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/64cb/6514723/6fb77f094ba7/materials-12-01255-g001.jpg

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