In Situ Reactive Formation of Mixed Oxides in Additively Manufactured Cobalt Alloy

Author:

Lopez Jack1ORCID,Cerne Rok1,Ho David1,Madigan Devin1,Shen Qing1,Yang Bo1ORCID,Corpus Joseph2,Jarosinski William2,Wang Haiyan13ORCID,Zhang Xinghang1

Affiliation:

1. School of Materials Engineering, Purdue University, West Lafayette, IN 47907, USA

2. Praxair Surface Technologies, Inc., Indianapolis, IN 46222, USA

3. School of Electrical and Computer Engineering, Purdue University, West Lafayette, IN 47907, USA

Abstract

Oxide-dispersion-strengthened (ODS) alloys have long been considered for high temperature turbine, spacecraft, and nuclear reactor components due to their high temperature strength and radiation resistance. Conventional synthesis approaches of ODS alloys involve ball milling of powders and consolidation. In this work, a process-synergistic approach is used to introduce oxide particles during laser powder bed fusion (LPBF). Chromium (III) oxide (Cr2O3) powders are blended with a cobalt-based alloy, Mar-M 509, and exposed to laser irradiation, resulting in reduction–oxidation reactions involving metal (Ta, Ti, Zr) ions from the metal matrix to form mixed oxides of increased thermodynamic stability. A microstructure analysis indicates the formation of nanoscale spherical mixed oxide particles as well as large agglomerates with internal cracks. Chemical analyses confirm the presence of Ta, Ti, and Zr in agglomerated oxides, but primarily Zr in the nanoscale oxides. Mechanical testing reveals that agglomerate particle cracking is detrimental to tensile ductility compared to the base alloy, suggesting the need for improved processing methods to break up oxide particle clusters and promote their uniform dispersion during laser exposure.

Funder

NSF AGEP fellowship

NSF-DFG CMMI

U.S. Office of Naval Research

Publisher

MDPI AG

Subject

General Materials Science

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