Effect of Gd on microstructure, mechanical properties and wear behavior of as-cast Mg–5Sn alloy
- Authors: Cong M.1, Li Z.1,2, Liu J.1,3, Miao X.4, Wang B.1, Xi Q.1
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Affiliations:
- College of Materials Science and Technology
- Chemical Engineering Department
- State Key Laboratory of Mechanics and Control of Mechanical Structures
- Fundamental Aspects of Materials and Energy, Faculty of Applied Science
- Issue: Vol 57, No 5 (2016)
- Pages: 445-455
- Section: Physical Metallurgy and Heat Treatment
- URL: https://journals.rcsi.science/1067-8212/article/view/226006
- DOI: https://doi.org/10.3103/S1067821216050114
- ID: 226006
Cite item
Abstract
Effect of minor Gd addition on the microstructure, mechanical properties and wear behavior of as-cast Mg–5Sn-based alloy was investigated by means of OM, XRD, SEM, EDS, a super depth-of-field 3D system, standard high-temperature tensile testing and dry sliding wear testing. Minor Gd addition has strong effect on changing the morphology of the Mg–5Sn binary alloy. Gd addition benefits the grain refinement of the primary α-Mg phase, as well as the formation and homogeneous distribution of the secondary Mg2Sn phase. The mechanical properties of the Mg–5Sn alloys at ambient and elevated temperatures are significantly enhanced by Gd addition. The wear behavior of the Mg–5Sn alloy is also improved with minor Gd addition. The alloy with 0.8% Gd addition exhibits the best ultimate tensile strength and elongation as well as the optimal wear behavior. Additionally, the worn surface of the Mg–5Sn–Gd becomes smoother in higher Gd-containing alloys. The best wear behavior of alloy was exhibited when Gd addition was up to 0.8%, showing a much smoother worn surface than that of control sample. The improvement of tensile properties is mainly attributed to the refinement of microstructure and the increasing amount and uniform distribution of Mg2Sn phase. The larger amount of Mg2Sn phase uniformly distributed at the grain boundary of Mg–Sn–Gd alloys act as a lubrication during sliding, and combined with smaller grain size improve wear behavior of the binary alloy.
About the authors
Mengqi Cong
College of Materials Science and Technology
Email: jsliu@nuaa.edu.cn
China, no. 29 Yudao Street, Nanjing, 211100
Ziquan Li
College of Materials Science and Technology; Chemical Engineering Department
Author for correspondence.
Email: ziquanli@nuaa.edu.cn
China, no. 29 Yudao Street, Nanjing, 211100; Nanjing, 210048
Jinsong Liu
College of Materials Science and Technology; State Key Laboratory of Mechanics and Control of Mechanical Structures
Author for correspondence.
Email: jsliu@nuaa.edu.cn
China, no. 29 Yudao Street, Nanjing, 211100; Nanjing, 210016
Xuefei Miao
Fundamental Aspects of Materials and Energy, Faculty of Applied Science
Email: jsliu@nuaa.edu.cn
Netherlands, Mekelweg 15, Delft, 2629 JB
Bijun Wang
College of Materials Science and Technology
Email: jsliu@nuaa.edu.cn
China, no. 29 Yudao Street, Nanjing, 211100
Qingyang Xi
College of Materials Science and Technology
Email: jsliu@nuaa.edu.cn
China, no. 29 Yudao Street, Nanjing, 211100
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