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Microstructure and Mechanical Properties of 5356 Aluminum Alloy Fabricated by TIG Arc Additive Manufacturing |
SUN Jiaxiao1, YANG Ke1( ), WANG Qiuyu1, JI Shanlin1, BAO Yefeng1, PAN Jie2 |
1.College of Mechanical and Electronic Engineering, Hohai University, Changzhou 213022, China 2.Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China |
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Cite this article:
SUN Jiaxiao, YANG Ke, WANG Qiuyu, JI Shanlin, BAO Yefeng, PAN Jie. Microstructure and Mechanical Properties of 5356 Aluminum Alloy Fabricated by TIG Arc Additive Manufacturing. Acta Metall Sin, 2021, 57(5): 665-674.
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Abstract 5356 aluminum alloy has been widely applied in transportation, aerospace and other fields owing to its low density, excellent fatigue property, and superior corrosion resistance. Aluminum alloy is widely manufactured by the arc additive technique that operates at a fast manufacturing speed with simple equipment and high material utilization. The property of 5356 aluminum alloy is closely related to its microstructure. To better control the property of this alloy for the additive manufacturing of forming parts, it is necessary to study the evolution of its microstructure. In this work, 5356 aluminum alloy forming parts were produced by tungsten inert gas welding (TIG) arc additive manufacturing, and their microstructures and mechanical properties were analyzed. The 5356 aluminum alloy formed by TIG additive manufacturing was composed of α-Al matrix and β(Al3Mg2) phase. As the deposition height increased, the layer microstructure transformed from equiaxed grains to columnar grains and tended to stabilize at thermal equilibrium. The top layer exhibited a dendritic microstructure with serious segregation of the Mg element. The middle and lower microstructures were varied and included equiaxed grains, columnar grains, and a mixture of these, with improved Mg-element segregation. As the deposition height increased, the microhardness in the layer first decreased and then stabilized. The microhardness was larger in the interlayers than in the deposition layers. The pores gathered in the interlayers might explain the lower yield strength of the thin-walled parts than the theoretically calculated value. The tensile strength, yield strength, and elongation were all anisotropic, and the tensile property was better in the transverse than in the longitudinal direction. This result was attributable to pore accumulation between the layers of the thin-walled parts and to the uneven microstructure.
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Received: 21 July 2020
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Fund: National Key Research and Development Program of China(2017YFE0100100);Changzhou Key Research and Development Plan (Social Development Science and Technology Support)(CE-20205046) |
About author: YANG Ke, professor, Tel: (0519)85192035, E-mail: yangke_hhuc@126.com
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1 |
Li Q, Wang F D, Wang G Q, et al. Wire and arc additive manufacturing of lightweight metal components in aeronautics and astronautics [J]. Aeronaut. Manuf. Technol., 2018, 61(3): 74
|
|
李 权, 王福德, 王国庆等. 航空航天轻质金属材料电弧熔丝增材制造技术 [J]. 航空制造技术, 2018, 61(3): 74
|
2 |
Wang T T, Zhang Y B, Xie Y L. Status and development prospects of the wire arc additive manufacture technology [J]. Elect. Weld. Mach., 2017, 47(8): 60
|
|
王庭庭, 张元彬, 谢岳良. 丝材电弧增材制造技术研究现状及展望 [J]. 电焊机, 2017, 47(8): 60
|
3 |
Nie D J, Luo M Q, Chen W S, et al. Review of research progress of aluminum alloys for transportation [J]. Nonferrous Met. Process., 2016, 45(5): 15
|
|
聂德键, 罗铭强, 陈文泗等. 交通运输用铝合金材料研究进展 [J]. 有色金属加工, 2016, 45(5): 15
|
4 |
Zhang X M, Deng Y L, Zhang Y. Development of high strength aluminum alloys and processing techniques for the materials [J]. Acta Metall. Sin., 2015, 51: 257
|
|
张新明, 邓运来, 张 勇. 高强铝合金的发展及其材料的制备加工技术 [J]. 金属学报, 2015, 51: 257
|
5 |
Zhou D W, Peng Y, Xu S H, et al. Microstructure and mechanical property of steel/Al alloy laser welding with Sn powder addition [J]. Acta Metall. Sin., 2013, 49: 959
|
|
周惦武, 彭 艳, 徐少华等. 添加Sn粉激光焊接钢/铝合金异种金属的显微组织与性能 [J]. 金属学报, 2013, 49: 959
|
6 |
Pan F, Cui L, Qian W, et al. Microstructures and mechanical properties of dual-beam laser keyhole welded joints of aluminum alloys to stainless steels [J]. Acta Metall. Sin., 2016, 52: 1388
|
|
潘 峰, 崔 丽, 钱 伟等. 铝合金/不锈钢双光束激光深熔焊接接头组织及力学性能 [J]. 金属学报, 2016, 52: 1388
|
7 |
Jin P, Sui R, Li F X, et al. Reactive wetting of TC4 titanium alloy by molten 6061 Al and 4043 Al alloys [J]. Acta Metall. Sin., 2017, 53: 479
|
|
靳 鹏, 隋 然, 李富祥等. 熔融6061/4043铝合金在TC4钛合金表面的反应润湿 [J]. 金属学报, 2017, 53: 479
|
8 |
Chen L, Zhao G Q, Gong J, et al. Hot deformation behaviors and processing maps of 2024 aluminum alloy in as-cast and homogenized states [J]. J. Mater. Eng. Perform., 2015, 24: 5002
|
9 |
Liu Z L, Cui H T, Ji S D, et al. Improving joint features and mechanical properties of pinless fiction stir welding of alcald 2A12-T4 aluminum alloy [J]. J. Mater. Sci. Technol., 2016, 32: 1372
|
10 |
Bai J Y, Fan C L, Yang Y C, et al. Microstructures of 2219-Al thin-walled parts produced by shaped metal deposition [J]. Trans. China Weld. Inst., 2016, 37(6): 124
|
|
柏久阳, 范成磊, 杨雨晨等. 2219铝合金TIG填丝堆焊成形薄壁试样组织特征 [J]. 焊接学报, 2016, 37(6): 124
|
11 |
Liu Y B, Sun Q J, Jiang Y L, et al. Rapid prototyping process based on cold metal transfer arc welding technology [J]. Trans. China Weld. Inst., 2014, 35(7): 1
|
|
刘一搏, 孙清洁, 姜云禄等. 基于冷金属过渡技术快速成形工艺 [J]. 焊接学报, 2014, 35(7): 1
|
12 |
Gu J l, Ding J L, Williams S W, et al. The effect of inter-layer cold working and post-deposition heat treatment on porosity in additively manufactured aluminum alloys [J]. J. Mater. Process. Technol., 2016, 230: 26
|
13 |
Colegrove P A, Donoghue J, Martina F, et al. Application of bulk deformation methods for microstructural and material property improvement and residual stress and distortion control in additively manufactured components [J]. Scr. Mater., 2017, 135: 111
|
14 |
Wang H, Kovacevic R. Rapid prototyping based on variable polarity gas tungsten arc welding for a 5356 aluminium alloy [J]. Proc. Inst. Mech. Eng., 2001, 215B: 1519
|
15 |
Ouyang J H, Wang H, Kovacevic R. Rapid prototyping of 5356-aluminum alloy based on variable polarity gas tungsten arc welding: Process control and microstructure [J]. Mater. Manuf. Process., 2002, 17: 103
|
16 |
Sun C S, Zhang Z D, Liu L M. Microstructure and mechanical properties of 5356 aluminum alloy thin wall parts manufactured by laser induced MIG arc additive [J]. Weld. Technol., 2017, 46(5): 47
|
|
孙承帅, 张兆栋, 刘黎明. 激光诱导MIG电弧增材制造5356铝合金薄壁零件组织及力学性能 [J]. 焊接技术, 2017, 46(5): 47
|
17 |
Zhang C, Gao M, Zeng X Y. Workpiece vibration augmented wire arc additive manufacturing of high strength aluminum alloy [J]. J. Mater. Process. Technol., 2019, 271: 85
|
18 |
Long Q, Lu F H, Zhang Y L, et al. Present research status and new development of the welding technologies of Mg/Al dissimilar metals [J]. Light Met., 2018, (2): 47
|
|
龙 琼, 路坊海, 张玉兰等. Mg/Al异种金属焊接技术的研究现状及最新进展 [J]. 轻金属, 2018, (2): 47
|
19 |
Dai Q S, Ou S S, Deng Y L, et al. Microstructure evolution and grain size model of 5083 aluminum alloy during hot deformation [J]. Mater. Rev., 2017, 31(14): 143
|
|
戴青松, 欧世声, 邓运来等. 5083铝合金的热变形组织演变及晶粒度模型 [J]. 材料导报, 2017, 31(14): 143
|
20 |
Liang Y, Shen J Q, Hu S S, et al. Effect of TIG current on microstructural and mechanical properties of 6061-T6 aluminium alloy joints by TIG-CMT hybrid welding [J]. J. Mater. Process. Technol., 2018, 255: 161
|
21 |
Dubyna A, Mogucheva A, Kaibyshev R. Hall-Petch relationship in an Al-Mg-Sc alloy subjected to ECAP [J]. Adv. Mater. Res., 2014, 922: 120
|
22 |
Humphreys F J, Prangnell P B, Priestner R. Fine-grained alloys by thermomechanical processing [J]. Curr. Opin. Solid State Mater. Sci., 2001, 5: 15
|
23 |
Horgar A, Fostervoll H, Nyhus B, et al. Additive manufacturing using WAAM with AA5183 wire [J]. J. Mater. Process. Technol., 2018, 259: 68
|
24 |
Sha G, Marceau R K W, Gao X, et al. Nanostructure of aluminium alloy 2024: Segregation, clustering and precipitation processes [J]. Acta Mater., 2011, 59: 1659
|
25 |
Pang Y G, Wang Z T. Application of Al and Al alloys in high-tech and new weapons [J]. Light Alloy Fab. Technol., 2018, 46(6): 1
|
|
庞彦国, 王祝堂. 铝及铝合金在高新兵器中的应用 [J]. 轻合金加工技术, 2018, 46(6): 1
|
26 |
Gu J L, Wang X S, Bai J, et al. Deformation microstructures and strengthening mechanisms for the wire+arc additively manufactured Al-Mg4.5Mn alloy with inter-layer rolling [J]. Mater. Sci. Eng., 2018, A712: 292
|
27 |
Boeira A P, Ferreira I L, Garcia A. Alloy composition and metal/mold heat transfer efficiency affecting inverse segregation and porosity of as-cast Al-Cu alloys [J]. Mater. Des., 2009, 30: 2090
|
28 |
Gu J L, Ding J L, Williams S W, et al. The effect of inter-layer cold working and post-deposition heat treatment on porosity in additively manufactured aluminum alloys [J]. J. Mater. Process. Technol., 2016, 230: 26
|
29 |
Cong B Q, Ding J L, Williams S. Effect of arc mode in cold metal transfer process on porosity of additively manufactured Al-6.3%Cu alloy [J]. Int. J. Adv. Manuf. Technol., 2015, 76: 1593
|
30 |
Bai J Y, Yang C L, Lin S B, et al. Mechanical properties of 2219-Al components produced by additive manufacturing with TIG [J]. Int. J. Adv. Manuf. Technol., 2016, 86: 479
|
31 |
Liu P W, Wang Z, Xiao Y H, et al. Insight into the mechanisms of columnar to equiaxed grain transition during metallic additive manufacturing [J]. Add. Manuf., 2019, 26: 22
|
32 |
Bermingham M J, StJohn D H, Krynen J, et al. Promoting the columnar to equiaxed transition and grain refinement of titanium alloys during additive manufacturing [J]. Acta Mater., 2019, 168: 261
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