The Impact of Multiple Thermal Cycles Using CMT® on Microstructure Evolution in WAAM of Thin Walls Made of AlMg5
Abstract
:1. Introduction
2. Methodology and Experimental Procedure
2.1. The WAAM Thin Wall Building and Metallurgical Characterisation
2.2. In-Furnace Simulation and Metallurgical Characterisation
2.3. Computational Thermodynamics
3. Results and Discussion
3.1. Upmost Layer Characteristics
3.2. Central Layer Characteristics
3.3. In-Furnace Simulated Sample Characteristics
4. General Discussion
5. Conclusions
- The CMT® equipment and its dedicated synergic line for this alloy deliver arc power in a cyclic pulsing way. Evidence indicates that the power waveform and the differences between the low- and high-power cycles are sufficient to induce heat oscillation and alterations in the solidification front, thereby promoting the formation of a banded structure on a macroscopic scale at the lower part of the pool. Microscopically, the banded structure is formed by different sizes of cells. In addition, the structure in the fusion zone also exhibits the presence of cellular and dendritic substructures extending from the fusion line towards the top of the layer. This change is related to the increase in constitutional supercooling described with G/R, with such a relationship decreasing towards the top of the layer;
- The multiple thermal cycles imposed by subsequently deposited layers also change the morphologies of the original microstructure (as that existing in the top layer), in such a way that, depending on the peak temperature reached, different morphological zones appear in each layer;
- The subsequent thermal cycles on the previous layer create several morphological zones in each layer (replicated throughout the building direction, except in the top layer), with different characteristics;
- In the zone closest to the fusion line of the subsequent layer (upper region of the layer), where the peak temperature is at the highest temperature, within the solidus–liquidus temperature for this alloy, a partially melted zone (PMZ) is formed as a band composed of coarse dendrites and an interdendritic phase;
- In the below zone, the heat-affected zone (HAZ), partial dissolution of the interdendritic phase occurs;
- Following that comes the fusion zone (FZ), where the original as-deposited microstructure, with no reheat treatment, is preserved, and the cells/dendrites and the interdendritic phases are fine;
- In the region at the base of each layer, a banded zone forms by alternating sizes of cells. Due to the thermal cycling, the cells still undergo partial dissolution of the interdendritic phases, further highlighting the presence of the bands in relation to the original ones formed in the top layer;
- These four distinct zones in each layer, whose extension and area depend naturally on the combination of heat source energy and heat dissipation (related mainly to wall width and interlayer temperatures), are prone to complex mechanical properties of the wall (the impact of which is the subject of future work), different from the same wall built by other techniques (casting, machining, etc.);
- Numerical simulation studies revealed that the thermal cycling imposed on the solidified material did not significantly promote the precipitation of second-phase particles.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Si | Fe | Cu | Mn | Mg | Cr | Zn | Ti | Be | V | Al |
---|---|---|---|---|---|---|---|---|---|---|
0.0513 | 0.1093 | 0.0017 | 0.1413 | 4.8012 | 0.1296 | 0.0034 | 0.0979 | 0.0001 | 0.0104 | Bal. |
Simulation | Soak Temperature (°C) | Soak Time (min) | Cooling Media (at Room Temperature) |
---|---|---|---|
SIM-1 | 300 | 10 | Still air |
SIM-2 | 300 | 10 | Water |
SIM-3 | 500 | 10 | Water |
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Jorge, V.L.; Teixeira, F.R.; Wessman, S.; Scotti, A.; Henke, S.L. The Impact of Multiple Thermal Cycles Using CMT® on Microstructure Evolution in WAAM of Thin Walls Made of AlMg5. Metals 2024, 14, 717. https://doi.org/10.3390/met14060717
Jorge VL, Teixeira FR, Wessman S, Scotti A, Henke SL. The Impact of Multiple Thermal Cycles Using CMT® on Microstructure Evolution in WAAM of Thin Walls Made of AlMg5. Metals. 2024; 14(6):717. https://doi.org/10.3390/met14060717
Chicago/Turabian StyleJorge, Vinicius Lemes, Felipe Ribeiro Teixeira, Sten Wessman, Americo Scotti, and Sergio Luiz Henke. 2024. "The Impact of Multiple Thermal Cycles Using CMT® on Microstructure Evolution in WAAM of Thin Walls Made of AlMg5" Metals 14, no. 6: 717. https://doi.org/10.3390/met14060717
APA StyleJorge, V. L., Teixeira, F. R., Wessman, S., Scotti, A., & Henke, S. L. (2024). The Impact of Multiple Thermal Cycles Using CMT® on Microstructure Evolution in WAAM of Thin Walls Made of AlMg5. Metals, 14(6), 717. https://doi.org/10.3390/met14060717