4.7 Article

Simultaneous strength and ductility enhancements of high thermal conductive Ag7.5Cu alloy by selective laser melting

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SCIENTIFIC REPORTS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-022-08182-4

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资金

  1. National Natural Science Foundation of China [51902295]
  2. Wuhan Applied Foundational Frontier Project [2020010601012172]
  3. Hubei Province Natural Science Foundation [2019CFB264]

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The study demonstrates that by applying multi-scale synergies to Ag7.5Cu alloy, a significant enhancement in yield strength and ductility was achieved without post-treatment. This approach breaks the strength-ductility trade-off of conventional SLM alloys and showcases a unique strategy that leverages high thermal conductivity and internal stresses.
High electrical and thermal conductive metals (HETCM) play a key role in smart electronics, green energy, modern communications and healthcare, however, typical HETCM (e.g., Ag, Au, Cu) usually have relatively low mechanical strength, hindering further applications. Selective laser melting (SLM) is a potentially transformative manufacturing technology that is expected to address the issue. Ag is the metal with the highest thermal conductivity, which induces microscale grain refinement, but also leads to high internal stresses by SLM. Here, we select Ag7.5Cu alloy as an example to demonstrate that multi-scale (micro/meso/macro) synergies can take advantage of high thermal conductivity and internal stresses to effectively strengthen Ag alloy. The mimicry of metal-hardened structures (e.g., large-angle boundary) is extended to the mesoscale by controlling the laser energy density and laser scanning strategy to manipulate the macroscale internal stress intensity and mesoscale internal stress direction, respectively, to form mesoscale large-angle grains, resulting in multiple mutual perpendicular shear bands during fracture. The presented approach achieved a significant enhancement of yield strength (+ 145%) and ductility (+ 28%) without post-treatment. The results not only break the strength-ductility trade-off of conventional SLM alloys, but also demonstrate a multi-scale synergistic enhancement strategy that exploits high thermal conductivity and internal stresses.

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