Virtual and Physical Prototyping (Dec 2024)

Microstructure and mechanical properties of hammer-forging assisted wire-arc directed energy deposition AZ91 alloy

  • Fangyong Niu,
  • Cunxu Li,
  • Lu Li,
  • Mingze Xu,
  • Yunbo Hao,
  • Kai Zhao,
  • Huanyue Zhang,
  • Guoping Liu,
  • Guangyi Ma,
  • Dongjiang Wu

DOI
https://doi.org/10.1080/17452759.2024.2373378
Journal volume & issue
Vol. 19, no. 1

Abstract

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With the development of lightweight aerospace equipment, magnesium alloys are receiving increasing attention. Wire-arc directed energy deposition (Wire-arc DED) is a highly promising manufacturing method for magnesium alloy parts, but its development has been severely restricted by the problems of coarse grain size and low mechanical properties. To address these issues, a hammer-forging assisted Wire-arc DED technology for magnesium alloy AZ91 is proposed. The effects of interlayer hammer-forging and synchronous hammer-forging on macrostructure, microstructure and mechanical properties of the Wire-arc DED samples are compared, and the microstructure evolution and performance enhancement mechanism are discussed. The results show that the maximum plastic deformation caused by hammer forging reaches 11.7%. Hammer forging can significantly refine grains, and the average grain size decreases from 27.7 μm to 13.5 μm. Synchronous hammer-forging is better than interlayer hammer-forging in terms of performance enhancement, the UTS reaches 301.8 MPa, an increase of 10.9%, which is comparable to that of traditional forged parts, mainly attributed to the grain refinement and increased dislocation density.

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