Using θ′ interfaces as templates for planar L12 precipitation in AlCuMnZr alloys

•Al3Zr L12/θ' co-precipitates form faster in additively manufactured Al-Cu-Mn-Zr (ACMZ) alloys•Rapid solidification allows for higher matrix solute contents•Interfacial Zr segregation rate is dependent on the Zr matrix content•Theta prime precipitates are perfect templates for planar Al3Zr L12...

Full description

Saved in:
Bibliographic Details
Published inAdditive manufacturing letters Vol. 3; no. N/A; p. 100086
Main Authors Poplawsky, Jonathan D., Michi, Richard A., Allard, Lawrence F., Bahl, Sumit, Plotkowski, Alex J., Shyam, Amit
Format Journal Article
LanguageEnglish
Published United States Elsevier B.V 01.12.2022
Elsevier
Subjects
Online AccessGet full text

Cover

Loading…
More Information
Summary:•Al3Zr L12/θ' co-precipitates form faster in additively manufactured Al-Cu-Mn-Zr (ACMZ) alloys•Rapid solidification allows for higher matrix solute contents•Interfacial Zr segregation rate is dependent on the Zr matrix content•Theta prime precipitates are perfect templates for planar Al3Zr L12 formation Controlled Mn and Zr additions to Al-Cu alloys have allowed for the improved retention of mechanical properties after extended 350°C exposures by stabilizing the main strengthening θ' (Al2Cu) phase. Ultimately, θ'/L12 (Al3Zr) co-precipitate formation stabilizes θ' most effectively; however, Zr diffuses sluggishly and has low solubility in aluminum castings. Increasing the Zr segregation rate would allow for faster and more effective θ'/L12 co-precipitation. It is demonstrated that the Zr segregation rate is faster when the Zr matrix content is higher. A much higher Zr matrix content was achieved by rapid cooling during additive manufacturing (AM) that produces θ'/L12 co-precipitation faster, which is shown by scanning transmission electron microscopy and atom probe tomography experiments. It was also found that Zr continuously segregates to θ' interfaces up to the most aggressive heat treatment studied such that planar L12 precipitates remain after the metastable θ' dissolves. In this manner, we demonstrate that θ' coherent interfaces serve as perfect templates to form stable planar L12 precipitates that can provide strength at higher temperatures than traditional θ' strengthened AlCu alloys. This work introduces an alloy design strategy that uses metastable precipitates to quickly nucleate and grow co-precipitates with a desired geometry that contain slow diffusing elements. These ideas can be applied to engineer more heat resistant alloys by taking advantage of high solute matrix contents enabled by rapid cooling during additive manufacturing.
Bibliography:USDOE Office of Energy Efficiency and Renewable Energy (EERE), Transportation Office. Vehicle Technologies Office
AC05-00OR22725
ISSN:2772-3690
2772-3690
DOI:10.1016/j.addlet.2022.100086