Hierarchical Microstructure Enables High Strength And Good Ductility In As-cast Fe27Ni35Cr18.25Al13.75Co2Ti2Mo2 High-entropy Alloy
Abstract
As-cast alloys often require complex thermomechanical processing to obtain a hierarchical structure to achieve a good combination of strength and ductility. Here in this work, a novel hierarchical Fe27Ni35Cr18.25Al13.75Co2Ti2Mo2 high-entropy alloy (HEA) with ultra-high tensile strength and excellent ductility was fabricated by direct casting. The as-cast alloy exhibits hierarchical structure with an ultrafine lamellar microstructure (ULM), ultrafine rhombus microstructure (URM), ultrafine vermicular microstructure (UVM), nanosized precipitates and spinodal decomposition (SP) that develops during casting and cooling. The incompatibility of face-centered cubic (FCC) and body-centered cubic (BCC) phases in the deformation process leads to heterogeneous deformation-induced (HDI) hardening, which brings the alloy a tensile yield strength (YS) of ∼1056 MPa, an ultimate tensile strength (UTS) of ∼1526 MPa and a total elongation (El) of ∼15.6%. Additionally, the numerous interfaces generated by the hierarchical structure absorb the energy during deformation, effectively retarding the dislocation motion and causing strong work-hardening.
Recommended Citation
J. Niu et al., "Hierarchical Microstructure Enables High Strength And Good Ductility In As-cast Fe27Ni35Cr18.25Al13.75Co2Ti2Mo2 High-entropy Alloy," Journal of Materials Science and Technology, vol. 179, pp. 9 - 21, Elsevier, Apr 2024.
The definitive version is available at https://doi.org/10.1016/j.jmst.2023.08.054
Department(s)
Materials Science and Engineering
Keywords and Phrases
Direct casting; Hierarchical microstructure; High-entropy alloy; Mechanical properties
International Standard Serial Number (ISSN)
1005-0302
Document Type
Article - Journal
Document Version
Citation
File Type
text
Language(s)
English
Rights
© 2023 Elsevier, All rights reserved.
Publication Date
20 Apr 2024
Comments
National Natural Science Foundation of China, Grant 2021QN02C766