Microstructure Evolution and Mechanical Behavior of 2219 Aluminum Alloys Additively Fabricated by the Cold Metal Transfer Process
Abstract
:1. Introduction
2. Experimental Procedure
3. Results and Discussion
3.1. Microstructure
3.1.1. Optical Micrographs
3.1.2. SEM Results
3.1.3. XRD Results
3.2. Tensile Properties
4. Conclusions
- The results showed that the 2219-Al wall fabricated CMT-P and CMT-ADV arc modes can generate smooth and uniform multilayer thin-wall parts.
- The conventional CMT process produced the largest number of small gas pores. The mean diameter of the pores produced by the CMT-ADV process was the largest with the average size of 30.0 μm and some pores were even larger than 100 μm. However, In the CMT-PADV arc mode, the pore area percentage was the smallest (only 0.98%) and there were no gas pores larger than 100 μm. Equiaxed grains were distributed in the fusion zone and a mixture of coarse columnar grain and finer equiaxed grain structure was observed. In addition, the CMT-PADV samples have the smallest lattice parameter which indicates the highest solute level of Cu in Al alloys.
- The best tensile strength was obtained by the CMT-PADV mode. The tensile strength could reach 283 MPa in the horizontal direction. What’s more, the strength properties were nearly isotropic with only a difference of 5 MPa in the vertical and horizontal directions. It can be concluded that will with proper control and monitoring of the process parameters in the CMT-PADV arc mode, large size 2219 Al parts with excellent properties can be rapidly deposited.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Alloys | Chemical Composition (wt %) | ||||||||
---|---|---|---|---|---|---|---|---|---|
Cu | Mn | Mg | Ti | Zr | V | Zn | Si | Fe | |
ER2319 | 5.8–6.8 | 0.2–0.4 | <0.02 | 0.1–0.2 | 0.1–0.25 | 0.05–0.15 | <0.1 | <0.2 | <0.3 |
2219-T87 | 5.8–6.8 | 0.2–0.4 | <0.02 | 0.02–0.1 | 0.1–0.25 | 0.05–0.15 | <0.1 | <0.2 | <0.3 |
Arc Mode | Welding Parameters |
---|---|
Cold metal transfer (CMT) | WFS = 6 m/min TS = 0.5 m/min HI = (220.9 J/mm) |
CMT-Advanced (CMT-ADV) | WFS = 6 m/min TS = 0.5 m/min HI = (194.0 J/mm) |
CMT-Pulse (CMT-P) | WFS = 5 m/min TS = 0.5 m/min HI = (231.8 J/mm) |
CMT pulse advanced (CMT-PADV) | WFS = 7 m/min TS = 0.5 m/min HI = (130.1 J/mm) |
Arc Mode | Number of Pores (In a Total Area of 34 mm2) | Mean Diameter (μm) | Area Percentage (%) | Mean Aspect Ratio |
---|---|---|---|---|
CMT | 1220 | 14.4 | 1.33 | 3.76 |
CMT-ADV | 822 | 30.0 | 2.60 | 2.94 |
CMT-P | 767 | 21.4 | 1.52 | 4.69 |
CMT-PADV | 747 | 18.9 | 0.98 | 3.24 |
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Fang, X.; Zhang, L.; Li, H.; Li, C.; Huang, K.; Lu, B. Microstructure Evolution and Mechanical Behavior of 2219 Aluminum Alloys Additively Fabricated by the Cold Metal Transfer Process. Materials 2018, 11, 812. https://doi.org/10.3390/ma11050812
Fang X, Zhang L, Li H, Li C, Huang K, Lu B. Microstructure Evolution and Mechanical Behavior of 2219 Aluminum Alloys Additively Fabricated by the Cold Metal Transfer Process. Materials. 2018; 11(5):812. https://doi.org/10.3390/ma11050812
Chicago/Turabian StyleFang, Xuewei, Lijuan Zhang, Hui Li, Chaolong Li, Ke Huang, and Bingheng Lu. 2018. "Microstructure Evolution and Mechanical Behavior of 2219 Aluminum Alloys Additively Fabricated by the Cold Metal Transfer Process" Materials 11, no. 5: 812. https://doi.org/10.3390/ma11050812
APA StyleFang, X., Zhang, L., Li, H., Li, C., Huang, K., & Lu, B. (2018). Microstructure Evolution and Mechanical Behavior of 2219 Aluminum Alloys Additively Fabricated by the Cold Metal Transfer Process. Materials, 11(5), 812. https://doi.org/10.3390/ma11050812