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DOE OSTI · 3025619

The Influence of Shielding Gas on the Wire-Arc Additive Manufacturing (WAAM) of Ni-Based Superalloy Haynes 282

Abstract

Wire-arc additive manufacturing (WAAM) enables building large near-net-shaped parts using fast deposition rates and is attractive due to the potential cost and schedule savings. Haynes® 282® is a Ni-based superalloy with wide application in advanced power generation systems for its superior high temperature mechanical properties. High-quality WAAM H282 parts are achieved through careful process optimization, hence, we have focused on systematically characterizing the processing-structure-properties relationships over a wide range of wire-feed and travel speeds using a standard Ar30He shielding gas. Here the influence of adding 0.25-3% of H2 and CO2 to Ar-30He standard on our findings is examined. Multi-bead tracks were used to screen 20+ gas combinations to examine impact on wettability, porosity, oxidation, and grain structures. Improved multi-tracks are observed for gases with up to 1% H2 and 0.25% CO2. WAAM H282 builds within this range are examined to reveal differences in microstructure as evaluated with CT, SEM-EDS, and EBSD.

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Sudbrack, Chantal [NETL] (ORCID:0000000281756138), Adam, Benjamin [Oregon State University], Namie, Shane [NETL Site Support Contractor, National Energy Technology Laboratory], Colon Cruz, Carla [University of Arizona], Turpin, Robert [Oregon State University], Crandall, Dustin [NETL] (ORCID:0000000173289464), Tewksbury, Graham [Oregon State University]. 2026-03-18. The Influence of Shielding Gas on the Wire-Arc Additive Manufacturing (WAAM) of Ni-Based Superalloy Haynes 282. https://doi.org/10.2172/3025619

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36 MATERIALS SCIENCE