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Comparative study of the microstructures and mechanical properties of direct laser fabricated and arc-melted AlxCoCrFeNi high entropy alloys

  • Jithin Joseph
  • , Tom Jarvis
  • , Xinhua Wu
  • , Nicole Stanford
  • , Peter Hodgson
  • , Daniel Mark Fabijanic

Research output: Contribution to journalArticleResearchpeer-review

Abstract

High entropy alloys (HEA) are a relatively new metal alloy system that have promising potential in high temperature applications. These multicomponent alloys are typically produced by arcmelting, requiring several remelts to achieve chemical homogeneity. Direct laser fabrication (DLF) is a rapid prototyping technique, which produces complex components from alloy powder by selectively melting micronsized powder in successive layers. However, studies of the fabrication of complex alloys from simple elemental powder blends are sparse. In this study, DLF was employed to fabricate bulk samples of three alloys based on the AlxCoCrFeNi HEA system, where x was 0.3, 0.6 and 0.85M fraction of Al. This produced FCC, FCC/BCC and BCC crystal structures, respectively. Corresponding alloys were also produced by arcmelting, and all microstructures were characterised and compared longitudinal and transverse to the build/solidification direction by xray diffraction, glow discharge optical emission spectroscopy and scanning electron microscopy (EDX and EBSD). Strong similarities were observed between the single phase FCC and BCC alloys produced by both techniques, however the FCC/BCC structures differed significantly. This has been attributed to a difference in the solidification rate and thermal gradient in the melt pool between the two different techniques. Room temperature compression testing showed very similar mechanical behaviour and properties for the two different processing routes. DLF was concluded to be a successful technique to manufacture bulk HEA[U+05F3]s.
Original languageEnglish
Pages (from-to)184 - 193
Number of pages10
JournalMaterials Science and Engineering A: Structural Materials: Properties, Microstructure and Processing
Volume633
DOIs
Publication statusPublished - 2015

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