Tailored porosity in additive manufacturing of 7075 aluminum alloy for crack suppression and high strength

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Tailored porosity in additive manufacturing of 7075 aluminum alloy for crack suppression and high strength
Title:
Tailored porosity in additive manufacturing of 7075 aluminum alloy for crack suppression and high strength
Journal Title:
Journal of Materials Processing Technology
Keywords:
Publication Date:
02 October 2024
Citation:
Liu, T.-S., Qiu, F., Du, S., Su, J., Yang, H.-Y., Chen, P., Ng, F. L., Chew, Y., Jiang, Q.-C., & Tan, C. (2024). Tailored porosity in additive manufacturing of 7075 aluminum alloy for crack suppression and high strength. Journal of Materials Processing Technology, 334, 118620. https://doi.org/10.1016/j.jmatprotec.2024.118620
Abstract:
Laser-directed energy deposition (LDED) additive manufacturing of 7075 aluminum (Al) alloy is highly challenging due to the inherent poor printability and high cracking tendency. Here, we disclose a new approach to suppress cracking in LDED-processed 7075 Al alloy by engineered porosity (about 1.14 %). The crack-free 7075 Al alloy was achieved by slightly sacrificing the densification. Further increasing the density of the material by increasing laser energy input leads to cracking. The mechanisms of minor pores in alleviating cracks are mainly reflected in three aspects: (i) pores disrupt the epitaxial growth of columnar grains; (ii) free-form surfaces surrounding pores could release the accumulated residual stress, and (iii) more dislocations near pore drive nucleation of near equiaxed grains. The LDED-processed crack-free 7075 Al alloy after heat treatment shows an ultimate tensile strength of 464 ± 12 MPa and break elongation of 9.7 ± 1.2 %, attaining a good strength-ductility synergy among many additively manufactured 7075 Al alloys in the current literature. Unlike the mainstream additive manufacturing of metallic materials, which pursues high densification to attain high-performance components, this work demonstrates the positive roles of pores in the additive manufacturing of cracking-sensitive materials. The findings of this work highlight new insights regarding the balance between pores and cracks for better manufacturability and higher mechanical performance of materials.
License type:
Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0)
Funding Info:
This research / project is supported by the Agency for Science, Technology and Research - 2022 Manufacturing, Trade, and Connectivity Young Individual Research Grants
Grant Reference no. : M22K3c0097

This research / project is supported by the China Scholarship Council - NA
Grant Reference no. : 202206170073
Description:
ISSN:
0924-0136
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