Mechanical properties and microstructure evolutions of the SLM fabricated Al-Mg-Mn-Sc-Zr alloy when deforming at elevated temperatures

IF 4.8 2区 材料科学 Q1 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Mengmeng Tong , Chun Chen , Jingbo Zhu , Zhiping Chen , Jianfei Hao , Runxia Li , Biao Wang
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引用次数: 0

Abstract

The Al-Mg-Mn-Sc-Zr alloy is fabricated by selective laser melting (SLM), and the tensile deformation behaviors at 20 °C ∼ 300 °C are studied. The results indicate that the alloy exhibits significant softening when deformed at elevated temperatures. When the tensile temperature increases from 20 °C to 300 °C, the peak strength decreases from 592 MPa to 167 MPa, and the elongation increases from 13.6 % to 23.9 %, respectively. The decrease in strength is mainly due to the reduction in densities of dislocations and grain boundaries, as well as the weakening of pinning effects of dispersed Al3(Sc,Zr) particles. The increase in elongation can be attributed to the alleviation of local stress concentration and enhancement on dislocation slip frequency during thermal deformation. In addition, the typical bimodal grain structures of the SLM alloys result in different deformation behaviors. The coarse grains usually deform preferentially under high temperatures due to their higher Schmid factors and lower strength. The unavoidable pore defects formed during the printing process will weaken the alloy's uniform plastic deformation ability and result in a deterioration of elongations, especially when the pore size further increases at higher temperatures. As a result, the improvement on elongations of the SLM fabricated Al-Mg-Mn-Sc-Zr alloys when deforming at elevated temperatures is not as significant as that of alloys fabricated by traditional methods.
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来源期刊
Materials Characterization
Materials Characterization 工程技术-材料科学:表征与测试
CiteScore
7.60
自引率
8.50%
发文量
746
审稿时长
36 days
期刊介绍: Materials Characterization features original articles and state-of-the-art reviews on theoretical and practical aspects of the structure and behaviour of materials. The Journal focuses on all characterization techniques, including all forms of microscopy (light, electron, acoustic, etc.,) and analysis (especially microanalysis and surface analytical techniques). Developments in both this wide range of techniques and their application to the quantification of the microstructure of materials are essential facets of the Journal. The Journal provides the Materials Scientist/Engineer with up-to-date information on many types of materials with an underlying theme of explaining the behavior of materials using novel approaches. Materials covered by the journal include: Metals & Alloys Ceramics Nanomaterials Biomedical materials Optical materials Composites Natural Materials.
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