4.7 Article

High-pressure torsion driven phase transformations in Cu-Al-Ni shape memory alloys

期刊

ACTA MATERIALIA
卷 125, 期 -, 页码 274-285

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2016.12.003

关键词

High-pressure torsion; Precipitation; Decomposition; Phase transitions; Shape memory alloys

资金

  1. Russian Foundation for Basic Research [15-08-09325, 16-53-12007, 14-4803598]
  2. Deutsche Forschungsgemeinschaft
  3. Government of Moscow Region
  4. Russian Federal Ministry for Education and Science
  5. Spanish Ministry of Economy and Competitivity, MINECO [MAT2012-36421]
  6. CONSOLIDER-INGENIO [CSD2009-00013]
  7. Consolidated Research Group [IT 10-310]
  8. Basque Government
  9. Karlsruhe Nano Micro Facility

向作者/读者索取更多资源

Severe plastic deformation (SPD) frequently induces phase transformations like decomposition of supersaturated solid solution, dissolution of precipitates, amorphization, nanocrystallization etc. Such diffusive phase transitions are combined with SPD-driven accelerated mass transfer. Displacive (or martensitic) phase transitions can also take place and in combination with diffusive ones have not been investigated in depth in severely deformed materials. The goal of this work is to investigate the combination of displacive (austenite <-> martensite) and diffusive (decomposition of supersaturated solid solution) phase transitions in two different Cu-Al-Ni shape memory alloys under the influence of high-pressure torsion (HPT). After homogenization in the one-phase (austenitic) beta-area of Cu-Al-Ni phase diagram and quenching, the first alloy was in martensitic state (mainly beta'(3) martensite with a small amount of gamma'(3) martensite), and the second one remained austenitic (beta(3) phase). The HPT of these alloys led to the precipitation of alpha(1)-phase in the first case and gamma(1)-phase in the second one (as if they were annealed at an effective temperature T-eff = 620 +/- 20 degrees C). As a result of precipitation, the matrix in the first alloy was enriched and in the second one depleted in Al. After HPT, both alloys contained mainly beta'(3) martensite with a certain amount of gamma'(3) martensite. Thus, the HPT-driven diffusive transformations (precipitation of alpha(1)-and gamma(1)-phase) influence the followed displacive (martensitic) transformation. Simultaneously, a dramatic grain refinement is obtained and the reported results open new possibilities to investigate the superelastic and shape memory effects in nanostructured Cu-Al-Ni alloys. (C) 2016 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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