Published June 2018 | Version v1
Journal article

Effect of secondary phase particles on thermal stability of ultra-fine grained Mg-4Y-3RE alloy prepared by equal channel angular pressing

  • 1. Department of Physics of Materials, Charles University, Prague (Czech Republic)
  • 2. Department of Low Temperature Physics, Charles University, Prague (Czech Republic)
  • 3. Department of Metals and Corrosion Engineering, University of Chemistry and Technology Prague, Prague (Czech Republic)

Description

Highlights: • UFG structure with grain size of ~340 nm was achieved in WE43 by ECAP. • Fine Mg5RE particles are responsible for microstructural stability up to 280 °C. • Segregation of Y and RE solutes in grain boundaries was observed. • Hardening at 200–280 °C was observed due to segregation and precipitation. • Effect of particles dissolution and grain growth on softening was discussed. - Abstract: As-cast magnesium alloy WE43, containing yttrium and rare earth elements, was processed by equal channel angular pressing (ECAP). The processing led to a significant grain refinement together with a massive precipitation of the secondary phase particles. Thermal stability of the ultra-fine grain (UFG) structure together with microstructural changes due to exposure to elevated temperatures were studied by several complementary techniques in the temperature range of 160–500 °C. It was found that UFG structure consisting of grains with size of ~340 nm and high density of Mg5RE particles is stable up to 280 °C for 1 h of annealing. Moreover, only negligible change of the microstructure occurred after annealing for 16 h at 250 °C. Excellent thermal stability of UFG structure was caused by fine Mg5RE particles, which suppressed the grain growth. Exceeding the limit of thermal stability of these particles above 280 °C resulted in material softening. Moreover, statistically significant hardening of the UFG material occurred in the temperature range of 200–280 °C. Segregation of yttrium and rare earth elements and eventually precipitation at grain boundaries was proved to be responsible for observed hardening by in-situ and ex-situ transmission electron microscope and positron annihilation spectroscopy analysis. Finally, individual effect of particles dissolution and grain growth on the material softening was investigated and discussed.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.matchar.2018.04.006

Additional details

Identifiers

DOI
10.1016/j.matchar.2018.04.006;
PII
S1044580318303978;

Publishing Information

Journal Title
Materials Characterization
Journal Volume
140
Journal Page Range
p. 207-216
ISSN
1044-5803
CODEN
MACHEX

Optional Information

Copyright
Copyright (c) 2017 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.