A comparative study on microstructure, nanomechanical and corrosion behaviors of AlCoCuFeNi high entropy alloys fabricated by selective laser melting and laser metal deposition
Journal article, 2022

The present study investigated the microstructure, nanomechanics, and corrosion behavior of AlCoCuFeNi high entropy alloys fabricated by selective laser melting (SLM) and laser metal deposition (LMD). The microstructure of SLM-processed specimens was mainly composed of columnar-grained BCC matrix (∼90 µm in width) and Cu-rich twinned FCC phase. The columnar grains grew epitaxially along the building direction and exhibited a strong {001} texture. In comparison, a coarse columnar-grained BCC matrix (∼150 µm in width) with a stronger 〈001〉 texture, rod-like B2 precipitates, and large core-shell structured FCC phases were formed in the LMD-processed specimens due to the higher heat accumulation effect. Consequently, the LMD-processed specimens showed a lower hardness, wear resistance, and corrosion resistance, but higher creep resistance and reduced Young's modulus than the SLM-processed specimens. Hot cracks occurred in both types of specimens, which could not be completely suppressed due to Cu segregation.

High entropy alloys

Nanomechanics

Selective laser melting

Corrosion

Laser metal deposition

Author

Yaojia Ren

Central South University

Hong Wu

Central South University

Bin Liu

Central South University

Yong Liu

Central South University

Sheng Guo

Chalmers, Industrial and Materials Science, Materials and manufacture

Z. B. Jiao

Hong Kong Polytechnic University

Ian Baker

Thayer School of Engineering at Dartmouth

Journal of Materials Science and Technology

1005-0302 (ISSN)

Vol. 131 221-230

Subject Categories

Manufacturing, Surface and Joining Technology

Metallurgy and Metallic Materials

Corrosion Engineering

Areas of Advance

Materials Science

DOI

10.1016/j.jmst.2022.05.035

More information

Latest update

7/11/2022