High strain rate superplasticity in mechanically alloyed nickel aluminides

Y. Doi*, K. Matsuki, H. Akimoto, T. Aida

*Corresponding author for this work

Research output: Contribution to journalConference articlepeer-review

1 Scopus citations

Abstract

Grain refining for three nickel aluminides such as γ′-Ni3Al (25Al) and β-NiAl (49Al) single-phase intermetallics, and (γ′+β) two-phase intermetallic (34Al) has been attained by using a wet mechanical alloying and vacuum hot pressing process. The values of average grain size of the three compacted intermetallics were very close and as small as about 1.0 μm. The superplastic flow behaviors of the fine grain intermetallics were examined mainly by hot compression tests, together with some tensile tests. The compression tests were performed at the temperatures of 1073K-1273K and at an initial strain rate range from 1.4×10-4s-1 to 5.6×10-2s-1. The results obtained from the compression and tensile tests revealed that γ′ single-phase intermetallic (25Al) and (γ′+β) two-phase intermetallic (34Al) can be deformed superplastically at 1273K and at a high strain rate range of about 4×10-3s-1 ∼ 5.6×10-2s-1. However, β (49Al)single-phase intermetallics showed poor ductility in tensile tests, probably due to a cavity formation during the deformation. Grain boundary sliding accommodated by slip was considered to contribute much to the high strain rate superplasticity in the intermetallics including γ′ phase.

Original languageEnglish
Pages (from-to)309-314
Number of pages6
JournalMaterials Science Forum
Volume357-359
DOIs
StatePublished - 2001
EventSuperplasticity in Advanced Materials (ICSAM-2000) - Orlando, FL, United States
Duration: 2000/08/012000/08/04

Keywords

  • Grain refining
  • High strain rate superplasticity
  • Nickel aluminides
  • Wet mechanical alloying

ASJC Scopus subject areas

  • General Materials Science
  • Condensed Matter Physics
  • Mechanics of Materials
  • Mechanical Engineering

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