Achieving excellent strength-ductility combination through the control of intricate substructures in an additively manufactured Co–Cr–Mo alloy

Authors: Jiang, W., An, X., Ni, S., Wang, L., He, J., Chen, Z., Huang, Y. and Song, M.

Journal: Materials Science and Engineering: A

Volume: 886

ISSN: 0921-5093

DOI: 10.1016/j.msea.2023.145687

Abstract:

In this study, we successfully endowed a classical Co25Cr5Mo5W alloy with excellent strength-ductility combination by regulating the substructures during laser powder bed fusion (LPBF) and subsequent heat treatment. State-of-the-art characterizations reveal that the as-built Co25Cr5Mo5W alloy features integrated networks of dense cell boundaries and stacking faults within a near-pure face-centered cubic matrix, which jointly confer a high yield strength of ∼820 MPa and a high ductility of ∼22.3%. Upon heat treatment, the heavy decoration of solutes Cr, Mo, W, and Si at cell boundaries triggers heterogeneous nucleation and growth of Laves precipitates within 15 min. After that, global intercellular precipitation occurs, further boosting the yield strength to ∼1170 MPa at a decent ductility of ∼7.5% when heat-treated for 60 min. Such a finding establishes a clear connection between the substructures and the mechanical properties, offering valuable implications for surpassing the current mechanical limitation in the Co–Cr–Mo alloy family.

https://eprints.bournemouth.ac.uk/38986/

Source: Scopus

Achieving excellent strength-ductility combination through the control of intricate substructures in an additively manufactured Co-Cr-Mo alloy

Authors: Jiang, W., An, X., Ni, S., Wang, L., He, J., Chen, Z., Huang, Y. and Song, M.

Journal: MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING

Volume: 886

eISSN: 1873-4936

ISSN: 0921-5093

DOI: 10.1016/j.msea.2023.145687

https://eprints.bournemouth.ac.uk/38986/

Source: Web of Science (Lite)

Achieving excellent strength-ductility combination through the control of intricate substructures in an additively manufactured Co–Cr–Mo alloy

Authors: Jiang, W., An, X., Ni, S., Wang, L., He, J., Chen, Z., Huang, Y. and Song, M.

Journal: Materials Science and Engineering A: Structural Materials: Properties, Microstructure and Processing

Volume: 886

Pages: 145687(1)-145687(13)

Publisher: Elsevier

ISSN: 0921-5093

DOI: 10.1016/j.msea.2023.145687

https://eprints.bournemouth.ac.uk/38986/

Source: Manual

Preferred by: Yi Huang

Achieving excellent strength-ductility combination through the control of intricate substructures in an additively manufactured Co–Cr–Mo alloy

Authors: Jiang, W., An, X., Ni, S., Wang, L., He, J., Chen, Z., Huang, Y. and Song, M.

Journal: Materials Science and Engineering: A

Volume: 886

Publisher: Elsevier

ISSN: 0921-5093

Abstract:

In this study, we successfully endowed a classical Co25Cr5Mo5W alloy with excellent strength-ductility combination by regulating the substructures during laser powder bed fusion (LPBF) and subsequent heat treatment. State-of-the-art characterizations reveal that the as-built Co25Cr5Mo5W alloy features integrated networks of dense cell boundaries and stacking faults within a near-pure face-centered cubic matrix, which jointly confer a high yield strength of ∼820 MPa and a high ductility of ∼22.3%. Upon heat treatment, the heavy decoration of solutes Cr, Mo, W, and Si at cell boundaries triggers heterogeneous nucleation and growth of Laves precipitates within 15 min. After that, global intercellular precipitation occurs, further boosting the yield strength to ∼1170 MPa at a decent ductility of ∼7.5% when heat-treated for 60 min. Such a finding establishes a clear connection between the substructures and the mechanical properties, offering valuable implications for surpassing the current mechanical limitation in the Co–Cr–Mo alloy family.

https://eprints.bournemouth.ac.uk/38986/

Source: BURO EPrints