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  4. Single-step reductive sintering for sustainable additive manufacturing of as-water-atomized steel powders
 
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2025
Journal Article
Title

Single-step reductive sintering for sustainable additive manufacturing of as-water-atomized steel powders

Abstract
Steel additive manufacturing (AM) has traditionally relied on highly refined powders that underwent energy-intensive pre-processing to remove impurities and achieve the targeted bulk composition. This study presents an innovative, resource-efficient, and economically viable approach to binder jet additive manufacturing (BJAM) of steel. By directly utilizing low-cost, as-water-atomized steel powders, this method achieves in-situ chemical refinement and bulk densification via a single-step reductive sintering process, streamlining production while minimizing environmental impact and costs. Key factors include maintaining low H<inf>2</inf> partial pressure to prevent excessive decarburization, while leveraging higher temperatures to reduce stable oxides and triggering supersolidus liquid-phase sintering (SLPS), thus achieving densification > 99.7 % solid. In-situ thermal and off-gassing analyses, combined with ex-situ chemical analysis, revealed the underlying reductive sintering mechanisms, particularly the dominant role of CO-based redox reaction in driving deoxidation and decarburization after the BCC→FCC transformation.
Author(s)
Yang, Mingzhang
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Keshavarz, Mohsen K.
University of Waterloo
Vlasea, Mihaela L.
University of Waterloo
Journal
Journal of materials processing technology  
Open Access
File(s)
Download (4.4 MB)
Rights
CC BY-NC 4.0: Creative Commons Attribution-NonCommercial
DOI
10.1016/j.jmatprotec.2025.119023
10.24406/publica-5239
Additional link
Full text
Language
English
Fraunhofer-Institut für Fertigungstechnik und Angewandte Materialforschung IFAM  
Keyword(s)
  • As-water-atomized steel powders

  • Binder jet additive manufacturing

  • Hydrogen sintering

  • Reduction

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