Non-oxide precipitates in additively manufactured austenitic stainless steel

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作者
Manas Vijay Upadhyay
Meriem Ben Haj Slama
Steve Gaudez
Nikhil Mohanan
Lluis Yedra
Simon Hallais
Eva Héripré
Alexandre Tanguy
机构
[1] Institut Polytechnique de Paris,Laboratoire de Mécanique des Solides (LMS), CNRS UMR 7649, Ecole Polytechnique
[2] Université Paris-Saclay,Laboratoire de Mécanique des Sols, Structures et Matériaux (MSSMat), CNRS UMR 8579, CentraleSupélec
[3] Université de Lorraine,Institut Jean Lamour (IJL), CNRS UMR 7198
[4] Université Paris Saclay,Laboratoire Structures, Propriétés et Modélisation des Solides (SPMS), CNRS UMR 8580, CentraleSupélec
[5] University of Barcelona,Department of Electronics and Biomedical Engineering, Institute of Nanoscience and Nanotechnology (IN2UB)
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摘要
Precipitates in an austenitic stainless steel fabricated via any Additive Manufacturing (AM), or 3D printing, technique have been widely reported to be only Mn-Si-rich oxides. However, via Transmission Electron Microscopy (TEM) studies on a 316L stainless steel, we show that non-oxide precipitates (intermetallics, sulfides, phosphides and carbides) can also form when the steel is fabricated via Laser Metal Deposition (LMD)—a directed energy deposition-type AM technique. An investigation into their origin is conducted with support from precipitation kinetics and finite element heat transfer simulations. It reveals that non-oxide precipitates form during solidification/cooling at temperatures ≥ 0.75Tm (melting point) and temperature rates ≤ 105 K/s, which is the upper end of the maximum rates encountered during LMD but lower than those encountered during Selective Laser Melting (SLM)—a powder-bed type AM technique. Consequently, non-oxide precipitates should form during LMD, as reported in this work, but not during SLM, in consistency with existing literature.
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