Effect of Al-5Ti-2B on the Microstructure and Mechanical Properties of Recycled Al-7Si-0.3Mg-1Fe Alloy
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Metallographic Analysis
3.2. BSE Imaging and EDS Analysis
3.3. Tensile Properties Analysis
3.4. Fractography Analysis
4. Conclusions
- (1)
- In the recycled Al-7Si-0.3Mg-1Fe alloy, Fe primarily exists in the form of the β-Al5SiFe phase, appearing as coarse needle-like structures distributed around the eutectic Si, with some penetrating the entire Al-Si eutectic structure and disrupting the matrix structure. As the addition of Al-5Ti-2B increases, the α-Al primary phase and eutectic Si in the matrix alloy structure become refined, and the structure tends to homogenize. When the addition of Al-5Ti-2B reaches 1%, the alloy properties reach their optimal state, with the average grain size decreasing to 16.42 μm, tensile strength increasing to 149.4 MPa, and the elongation increasing to 4.3%. When the addition of Al-5Ti-2B continues to increase, the eutectic Si aggregates, the β-Al5SiFe phase coarsens, and micro-porosity appears in the alloy structure, leading to a decline in the alloy’s performance.
- (2)
- Iron (Fe) elements adhere to the eutectic silicon (Si), forming the β-Al5FeSi phase. Magnesium (Mg) enriches at grain boundaries, inhibiting the growth of coarse Fe phases. Simultaneously, Mg reacts with silicon to form Mg2Si, achieving solid solution strengthening and enhancing the alloy’s performance. Al-5Ti-2B serves as a grain refiner, with its effectiveness primarily dependent on TiB2 and Al3Ti, which act as nuclei for the heterogeneous nucleation of α-Al. When the addition of Al-5Ti-2B is 1%, the refinement effect on the primary α-Al phase and eutectic Si in the matrix structure is significant, but its effect on altering the morphology of the β-Al5FeSi phase is not prominent. However, after the matrix structure is refined, it inhibits the growth and distribution of the β-Al5FeSi phase, thereby mitigating the adverse effects of the β-Al5FeSi phase on the matrix alloy. When the addition of Al-5Ti-2B increases to 1.25%, eutectic Si aggregates, and the β-Al5FeSi phase regrows into coarse needle-like structures, severely impairing the alloy’s mechanical properties. Additionally, iron-rich intermetallic compounds may serve as nucleation sites for pores, increasing the porosity and leading to casting defects. Therefore, when improving the properties of iron-rich regenerated Al-Si-Mg alloys through the refinement effect of Al-5Ti-2B, the optimal addition amount is 1%.
- (3)
- Based on the relevant literature and experimental results, it is known that due to the difference in thermal expansion coefficients at the interface between the β-Al5FeSi phase and the matrix, microcracks are prone to form. Under external force, these microcracks propagate rapidly along the interface between the β-Al5FeSi phase and the α-Al matrix. Meanwhile, unmodified eutectic Si particles act as obstacles during crack propagation, causing crack deflection and branching, which severely impair the mechanical properties of the alloy. The presence of Fe elements affects the distribution of eutectic Si, thereby reducing the alloy’s casting performance. In tensile tests, the fracture surface shows no obvious yield or necking phenomena, with brittle fracture being the primary mode of failure.
5. Outlook
- (1)
- Interfacial Behavior of TiB2/Al and Fe Segregation Mechanisms
- (i)
- In situ TEM characterization of Fe segregation kinetics at TiB2/Al interfaces, particularly focusing on the atomic-scale interaction between Fe and the (0001)TiB2 nucleation substrate;
- (ii)
- Quantitative assessment of nucleation potency deterioration through interfacial energy measurements (e.g., AFM-based nanomechanical testing), establishing a predictive model correlating Fe concentration with undercooling requirements.
- (2)
- Rare-Earth-Enhanced Impurity Tolerance in Recycled Al-Si-Mg Alloys
- (i)
- The synergistic effects of Ce/La multi-component additions could mitigate Si poisoning by competitively binding with Ti (as verified by ab initio MD simulations of Ti-Si-RE cluster stability);
- (ii)
- Advanced correlative microscopy (combining APT for nanoscale Mg mapping and synchrotron μ-XRD for phase identification) is essential to quantify Mg partitioning behavior in Fe-containing systems;
- (iii)
- Phase-field modeling incorporating experimental inputs from high-throughput XRD-EBSD could elucidate the stabilization mechanism of α-Al(Fe,Mn)Si phases during solidification.
- (3)
- Thermomechanical Processing Optimization
- (i)
- The critical strain threshold for Fe-intermetallic fragmentation during multi-pass rolling, which could be determined through high-temperature EBSD coupled with crystal plasticity finite element modeling (CPFEM);
- (ii)
- The role of stored energy distribution (characterized by 3D-EBSD and TEM dislocation analyses) in governing precipitation kinetics during post-deformation aging.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Specimen ID | Al-5Ti-2B Additions (wt.%) |
---|---|
1 | 0 |
2 | 0.25% |
3 | 0.5% |
4 | 0.75% |
5 | 1% |
6 | 1.25% |
Specimen Number | Tensile Strength (MPa) | Elongation (%) |
---|---|---|
1 | 117.7 | 2.5 |
2 | 121.1 | 2.0 |
3 | 139.2 | 1.9 |
4 | 145.7 | 3.3 |
5 | 149.4 | 4.3 |
6 | 142.6 | 2.5 |
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Shi, W.; Chen, L.; He, B.; Lu, B.; Yang, J. Effect of Al-5Ti-2B on the Microstructure and Mechanical Properties of Recycled Al-7Si-0.3Mg-1Fe Alloy. Crystals 2025, 15, 584. https://doi.org/10.3390/cryst15070584
Shi W, Chen L, He B, Lu B, Yang J. Effect of Al-5Ti-2B on the Microstructure and Mechanical Properties of Recycled Al-7Si-0.3Mg-1Fe Alloy. Crystals. 2025; 15(7):584. https://doi.org/10.3390/cryst15070584
Chicago/Turabian StyleShi, Weihe, Lin Chen, Bing He, Biwang Lu, and Jianbing Yang. 2025. "Effect of Al-5Ti-2B on the Microstructure and Mechanical Properties of Recycled Al-7Si-0.3Mg-1Fe Alloy" Crystals 15, no. 7: 584. https://doi.org/10.3390/cryst15070584
APA StyleShi, W., Chen, L., He, B., Lu, B., & Yang, J. (2025). Effect of Al-5Ti-2B on the Microstructure and Mechanical Properties of Recycled Al-7Si-0.3Mg-1Fe Alloy. Crystals, 15(7), 584. https://doi.org/10.3390/cryst15070584