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  4. Formation mechanism and microstructural characteristics of a body-centered cubic phase in 3D printed 316L–CuCrZr multi-material structures, combining laser powder bed fusion with foils
 
research article

Formation mechanism and microstructural characteristics of a body-centered cubic phase in 3D printed 316L–CuCrZr multi-material structures, combining laser powder bed fusion with foils

Jamili, A. M.  
•
Basu, I.
•
Cayron, C.  
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November 1, 2025
Scripta Materialia

Additive manufacturing of 316L/CuCrZr multi-material metallic structures has recently attracted significant attention, due to the ideal combination of structural and thermal/electrical properties. In this work, a unique multi-phase microstructure was produced with a hybrid laser-powder bed fusion (L-PBF) process combining 316L steel thin foils and CuCrZr powders. In-situ XRD, together with EDS and EBSD measurements, revealed the formation of two distinct Cu- and Fe-rich FCC phases that co-exist with an Fe-rich BCC phase. From the observed phase morphologies and using thermodynamic calculations, the formation mechanism of the BCC phase is proposed to result from the miscibility gap of the phase diagram, elemental diffusion, and fluid dynamics within the melt pool. The control of the BCC phase content in additive manufacturing is anticipated to be critical for designing complex FCC+BCC “composite” microstructures that can impart substantial strengthening to L-PBF multi-material 316L/Cu structures.

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Type
research article
DOI
10.1016/j.scriptamat.2025.116844
Scopus ID

2-s2.0-105009233594

Author(s)
Jamili, A. M.  

École Polytechnique Fédérale de Lausanne

Basu, I.

ETH Zürich

Cayron, C.  

École Polytechnique Fédérale de Lausanne

Van Petegem, S.

Paul Scherrer Institut

Jhabvala, J.  

École Polytechnique Fédérale de Lausanne

Grundy, A. Nicholas

Thermo-Calc Software AB

Weisz-Patrault, D.

Laboratoire de Mecanique des Solides Ecole Polytechnique

Nohava, J.

Anton Paar GmbH

Ozsoy, A.

École Polytechnique Fédérale de Lausanne

Casati, N.

Paul Scherrer Institut

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Date Issued

2025-11-01

Published in
Scripta Materialia
Volume

268

Article Number

116844

Subjects

316L steel

•

Additive manufacturing

•

Copper

•

In-situ XRD

•

Multi-material

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMTM  
FunderFunding(s)Grant NumberGrant URL

Board of the Swiss Federal Institutes of Technology

Paul Scherrer Institute

Available on Infoscience
July 5, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/251931
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