4.7 Article

Hierarchical microstructures and deformation behavior of laser direct-metal-deposited Cu-Fe alloys

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2020.140659

关键词

Cu-Fe alloys; Additive manufacturing; Laser direct-metal-deposition; Hierarchical microstructure; BCC Cu; FCC Fe precipitation; Micropillar compression

资金

  1. Department of Energy -National Nuclear Security Administration (DOE-NNSA), Stewardship Science Academic Program [DENA0003857]

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Cu25Fe75 and Cu50Fe50 alloys fabricated using laser direct metal deposition exhibit hierarchical microstructures with nanoscale precipitates, showing enhanced flow strengths and significant plasticity in compression. The Cu25Fe75 alloy has lower yield strength but higher maximum compressive strength due to slightly coarser dendrites with nanoscale precipitation hierarchy.
Cu25Fe75 and Cu50Fe50 (nominal composition, at. %) alloys were fabricated using laser direct metal deposition (DMD) based additive manufacturing technique. These alloys exhibit hierarchical microstructures with bi-phasic Cu and Fe dendrites that contain nanoscale precipitates of varying sizes and structures. In the Cu25Fe75 alloy, Fe dendrites contained nanoscale, coherent, metastable BCC Cu and semi-coherent FCC Cu precipitates while the Cu matrix had nanoscale, coherent, metastable FCC Fe precipitates. In the Cu50Fe50 alloy, Fe dendrites only contained nanoscale semi-coherent FCC Cu precipitates while the Cu matrix had nanoscale coherent metastable FCC Fe precipitates. Both alloys exhibited enhanced flow strengths in the range of 750-980 MPa and significant plasticity, in compression. The Cu25Fe75 alloy had lower yield strength than Cu50Fe50 alloy but higher maximum compressive strength due to higher strain hardening resulting from slightly coarser dendrites with hierarchy of nanoscale precipitation.

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