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Additively manufactured fine-grained ultrahigh-strength bulk aluminum alloys with nanostructured strengthening defects

  • Gan Li
  • , Chunlu Zhao
  • , Yuhe Huang
  • , Qiyang Tan
  • , Junhua Hou
  • , Xi He
  • , Chuan Guo
  • , Wenjun Lu
  • , Lin Zhou
  • , Sida Liu
  • , Lei Zhang
  • , Xuliang Chen
  • , Xinggang Li
  • , Ying Li
  • , Junhua Luan
  • , Zhenmin Li
  • , Xinping Mao
  • , Ming Xing Zhang
  • , Qiang Zhu
  • , Jian Lu
  • CityU-Shenzhen Futian Research Institute
  • Southern University of Science and Technology
  • City University of Hong Kong
  • City University of Hong Kong Shenzhen Research Institute
  • Ltd.
  • Ltd.
  • University of Science and Technology Beijing
  • University of Queensland

Research output: Contribution to journalArticlepeer-review

122 Scopus citations

Abstract

In response to the critical need for lightweight designs and carbon neutrality, we introduce an innovative additively manufactured ultrafine-grained Al-Mg-Mn-Sc-Zr alloy reinforced with nano-structured planar defects via laser powder bed fusion (L-PBF), developed for complex-shaped parts that demand high strength and superior ductility. Owing to the uneven distribution of the L12-ordered Al3(Sc, Zr) nanoparticles, the as-printed alloy demonstrates a hierarchically heterogeneous microstructure featuring a triple-modal grain distribution. Tailored planar defects comprising stacking faults, 9R phase and nanotwins are strategically introduced in the as-printed alloy. Beyond the nano-scaled planar defects and the triple-modal grain distribution, further direct ageing process augments the abundance of nanoprecipitates, collectively boosting the yield strength to 656 MPa, which is higher than almost all L-PBFed Al alloys hitherto reported, and a decent ductility of 7.2 %. This work paves the way for the near net shape forming of high-performance Al alloy components for advanced structural applications.

Original languageEnglish
Pages (from-to)40-51
Number of pages12
JournalMaterials Today
Volume76
DOIs
StatePublished - Jul 2024

Keywords

  • Additive manufacturing
  • Aluminum alloy
  • Grain refinement
  • Laser powder bed fusion
  • Planar defects
  • Ultrahigh strength

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