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Characterizing precipitate evolution of an...
Journal article

Characterizing precipitate evolution of an Al–Zn–Mg–Cu-based commercial alloy during artificial aging and non-isothermal heat treatments by in situ electrical resistivity monitoring

Abstract

In situ electrical resistivity monitoring technique was employed to continuously evaluate the precipitate evolution of an Al–Zn–Mg–Cu-based commercial alloy during typical artificial aging treatments. The effects of artificial aging on the precipitates stability during non-isothermal heat treatments were also explored. Conventional hardness test, transmission electron microscopy and differential scanning calorimetry were also adopted to verify the electrical resistivity results. The results indicated that both the precipitation process and its timely rate could be followed by the monitored electrical resistivity during artificial aging treatments. The electrical resistivity results gave overall information on continuous precipitation and dissolution processes, especially under high heating rates. Samples artificial aging heat treated at 120°C for 24h followed by aging at 150°C for 24h presented more stable state and coarser precipitates than the samples only artificial aging heat treated at 120°C for 24h or triple artificial aging heat treated at 120°C/24h+195°C/15min+120°/24h. While the incoherent η precipitates in the samples artificial aging heat treated at 120°C for 24h followed by aging at 150°C for 24h were more easiness to coarsening and dissolve during non-isothermal heat treatments as well.

Authors

Jiang F; Zurob HS; Purdy GR; Zhang H

Journal

Materials Characterization, Vol. 117, , pp. 47–56

Publisher

Elsevier

Publication Date

July 1, 2016

DOI

10.1016/j.matchar.2016.04.014

ISSN

1044-5803

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