|
|
Microstructure and Hardness of Al-Cu-Li Alloy Fabricated by Arc Additive Manufacturing Based on In Situ Metallurgy of Molten Pool |
LI Kangjie, SUN Zeyu, HE Bei( ), TIAN Xiangjun |
National Engineering Laboratory of Additive Manufacturing for Large Metallic Structures, Beihang University, Beijing 100191, China |
|
Cite this article:
LI Kangjie, SUN Zeyu, HE Bei, TIAN Xiangjun. Microstructure and Hardness of Al-Cu-Li Alloy Fabricated by Arc Additive Manufacturing Based on In Situ Metallurgy of Molten Pool. Acta Metall Sin, 2024, 60(5): 661-669.
|
Abstract Al-Li alloy has become an optional material for load-bearing components in aerospace because of its low density, high specific strength, and good fatigue performance. Currently, the widely used casting process to fabricate large Al-Li alloy structural parts has the issues of active and highly toxic Li elements, high equipment cost, long production cycle, limited forming size, and low material utilization. Wire and arc additive manufacturing technology uses an arc heat source to melt the raw materials, mostly prealloyed wires, and directly deposits the materials layer-by-layer by controlling the required components using a computer. It has the technical advantages of a short processing cycle, high material utilization, and a large frame formation, providing a new possibility for forming large Al-Li alloy components. Currently, the prealloyed welding wire is usually used as a raw material for arc additive manufacturing, but it is challenging to make high-performance Al-Li alloy wire and Li is strongly ablated under a high-temperature heat source. In situ metallurgy with an arc melt pool has prepared Al-Li alloys with good internal quality and superior performance potential while reducing manufacturing costs. Therefore, exploring the controllable addition of Li elements during the deposition process is necessary. Herein, the Al-Cu-Li alloy sample was successfully fabricated using a multimaterial arc melting deposition technology combining Al-Li alloy powder and 2219 Al-Cu alloy wire. The grain morphology, phase composition, and hardness of the as-built alloy sample were further analyzed. The as-built Al-Cu-Li alloy sample comprises fine equiaxed grains of 10-20 μm with semi-continuous reticular eutectic θ (Al2Cu) phases at the grain boundaries. TB (Al7Cu4Li) and T1 (Al2CuLi) phases can be observed near the grain boundaries under the influence of thermal cycling. T1 phases with significant strengthening effects can be observed in the middle and bottom of the sample. The number density of the T1 phase is higher in the bottom part compared to the middle, but the size of the T1 phase is relatively larger because the bottom of the sample near the substrate experienced more thermal cycling. The maximum hardness of the as-built Al-Li sample is 126.7 HV0.1, slightly higher than that of the other wire and arc additive manufactured using 2219 Al-Cu alloys, mainly owing to the fine equiaxed grains and the T1 phases formed via thermal cycling.
|
Received: 01 November 2022
|
|
Fund: National Natural Science Foundation of China(52101033);National Natural Science Foundation of China(52090044) |
Corresponding Authors:
HE Bei, associate professor, Tel: (010)82339691, E-mail: hebei@buaa.edu.cn
|
1 |
Rioja R J, Liu J. The evolution of Al-Li base products for aerospace and space applications[J]. Metall. Mater. Trans., 2012, 43A: 3325
|
2 |
Tian S, Bai X P, Chen F L, et al. Experimental research on deformation law of 2050 Al-Li alloy shot peen forming[J]. J. Netshape Form. Eng., 2022, 14(8): 67
|
|
田 硕, 白雪飘, 陈福龙 等. 2050铝锂合金喷丸成形变形规律试验研究[J]. 精密成形工程, 2022, 14(8): 67
|
3 |
Sun Z G, Guo X, Liu H B, et al. Development trend of advanced manufacturing technology for aluminum-lithium alloy[J]. Aeron. Manuf. Technol., 2012, (5): 60
|
|
孙中刚, 郭 旋, 刘红兵 等. 铝锂合金先进制造技术及其发展趋势[J]. 航空制造技术, 2012, (5): 60
|
4 |
Gupta R K, Nayan N, Nagasireesha G, et al. Development and characterization of Al-Li alloys[J]. Mater. Sci. Eng., 2006, A420: 228
|
5 |
Dursun T, Soutis C. Recent developments in advanced aircraft aluminium alloys[J]. Mater. Des., 2014, 56: 862
doi: 10.1016/j.matdes.2013.12.002
|
6 |
Rioja R J. Fabrication methods to manufacture isotropic Al-Li alloys and products for space and aerospace applications[J]. Mater. Sci. Eng., 1998, A257: 100
|
7 |
Li Q, Wang F D, Wang G Q, et al. Wire and arc additive manufacturing of lightweight metal components in aeronautics and astronautics[J]. Aeron. 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
|
8 |
Herzog D, Seyda V, Wycisk E, et al. Additive manufacturing of metals[J]. Acta Mater., 2016, 117: 371
doi: 10.1016/j.actamat.2016.07.019
|
9 |
Sun J X, Yang K, Wang Q Y, et al. Microstructure and mechanical properties of 5356 aluminum alloy fabricated by TIG arc additive manufacturing[J]. Acta Metall. Sin., 2021, 57: 665
doi: 10.11900/0412.1961.2020.00266
|
|
孙佳孝, 杨 可, 王秋雨 等. 5356铝合金TIG电弧增材制造组织与力学性能[J]. 金属学报, 2021, 57: 665
doi: 10.11900/0412.1961.2020.00266
|
10 |
Qi Z W, Qi B J, Cong B Q, et al. Microstructure and mechanical properties of wire + arc additively manufactured 2024 aluminum alloy components: As-deposited and post heat-treated[J]. J. Manuf. Process., 2019, 40: 27
doi: 10.1016/j.jmapro.2019.03.003
|
11 |
Jin P, Liu Y B, Li F X, et al. Realization of synergistic enhancement for fracture strength and ductility by adding TiC particles in wire and arc additive manufacturing 2219 aluminium alloy[J]. Composites, 2021, 219B: 108921
|
12 |
Jin P, Liu Y B, Sun Q J. Evolution of crystallographic orientation, columnar to equiaxed transformation and mechanical properties realized by adding TiCps in wire and arc additive manufacturing 2219 aluminum alloy[J]. Addit. Manuf., 2021, 39: 101878
|
13 |
Wang L W, Suo Y C, Liang Z M, et al. Effect of titanium powder on microstructure and mechanical properties of wire + arc additively manufactured Al-Mg alloy[J]. Mater. Lett., 2019, 241: 231
doi: 10.1016/j.matlet.2019.01.117
|
14 |
Lin D C, Wang G X, Srivatsan T S. A mechanism for the formation of equiaxed grains in welds of aluminum-lithium alloy 2090[J]. Mater. Sci. Eng., 2003, A351: 304
|
15 |
Mondol S, Kashyap S, Kumar S, et al. Improvement of high temperature strength of 2219 alloy by Sc and Zr addition through a novel three-stage heat treatment route[J]. Mater. Sci. Eng., 2018, A732: 157
|
16 |
Wang T, Zhu Y Y, Zhang S Q, et al. Grain morphology evolution behavior of titanium alloy components during laser melting deposition additive manufacturing[J]. J. Alloys Compd., 2015, 632: 505
doi: 10.1016/j.jallcom.2015.01.256
|
17 |
Liu S, Martínez E, LLorca J. Prediction of the Al-rich part of the Al-Cu phase diagram using cluster expansion and statistical mechanics[J]. Acta Mater., 2020, 195: 317
doi: 10.1016/j.actamat.2020.05.018
|
18 |
Bai J Y. Microstructure evolution of 2219-Al during GTA based additive manufacturing and heat treatment[D]. Harbin: Harbin Institute of Technology, 2017
|
|
柏久阳. 2219铝合金GTA增材制造及其热处理过程的组织演变[D]. 哈尔滨: 哈尔滨工业大学, 2017
|
19 |
Jiao S K, Cheng X, Shen S X, et al. Microstructure evolution and mechanical behavior of Al-Li alloy fabricated by laser melting deposition technique[J]. J. Alloys Compd., 2020, 821: 153125
doi: 10.1016/j.jallcom.2019.153125
|
20 |
Rad M T, Beckermann C. A truncated-Scheil-type model for columnar solidification of binary alloys in the presence of melt convection[J]. Materialia, 2019, 7: 100364
doi: 10.1016/j.mtla.2019.100364
|
21 |
Chen F Y, Jie W Q. Study of microsegregation in Al-Cu-Zn ternary alloys by experiment and scheil model[J]. Acta Metall. Sin., 2004, 40: 664
|
|
陈福义, 介万奇. Al-Cu-Zn合金微观偏析的实验和Scheil模型研究[J]. 金属学报, 2004, 40: 664
|
22 |
Cui S, Zhang C S, Liu M F, et al. Precipitation behavior of an Al-Cu-Li-X alloy and competing relationships among precipitates at different aging temperatures[J]. Mater. Sci. Eng., 2021, A814: 141125
|
23 |
Zhou Y H, Lin X, Kang N, et al. Mechanical properties and precipitation behavior of the heat-treated wire + arc additively manufactured 2219 aluminum alloy[J]. Mater. Charact., 2021, 171: 110735
doi: 10.1016/j.matchar.2020.110735
|
24 |
Zhou Y H, Lin X, Kang N, et al. Influence of travel speed on microstructure and mechanical properties of wire + arc additively manufactured 2219 aluminum alloy[J]. J. Mater. Sci. Technol., 2020, 37: 143
doi: 10.1016/j.jmst.2019.06.016
|
25 |
Wu D J, Liu D H, Niu F Y, et al. Al-Cu alloy fabricated by novel laser-tungsten inert gas hybrid additive manufacturing[J]. Addit. Manuf., 2020, 32: 100954
|
26 |
Dorin T, Deschamps A, Geuser F D, et al. Quantification and modelling of the microstructure/strength relationship by tailoring the morphological parameters of the T1 phase in an Al-Cu-Li alloy[J]. Acta Mater., 2014, 75: 134
doi: 10.1016/j.actamat.2014.04.046
|
27 |
Sun Z Y, He B, Li K J, et al. Study on microstructure evolution and aging precipitation behavior of a novel Al-Li alloy fabricated by laser rapid melting[J]. J. Alloys Compd., 2022, 908: 164630
doi: 10.1016/j.jallcom.2022.164630
|
28 |
Sun Z Y, Tian X J, He B, et al. Microstructure evolution and microhardness of the novel Al-Cu-Li-xSc alloys fabricated by laser rapid melting[J]. Vacuum, 2021, 189: 110235
doi: 10.1016/j.vacuum.2021.110235
|
29 |
Sun Z Y, He B, Chen R, et al. Anomalous precipitation of Al3Sc dispersoids on deformation behavior of a novel Al-Cu-Li alloy fabricated by direct energy deposition[J]. Mater. Lett., 2022, 318: 132207
doi: 10.1016/j.matlet.2022.132207
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|