Abstract
This paper designed a novel (CoFeNi)82Ti5Al5V8 medium entropy alloy (MEA) with “fcc + L12” typical structure using JMatPro. The microstructure of the alloy, like recrystallization/non-recrystallization and L12 nanoparticle size, can be well controlled by thermal-mechanical processing. The result shows that the (CoFeNi)82Ti5Al5V8 MEA exhibits a good combination of ultra high yield strength of ∼1500 MPa and ultimate tensile strength of ∼1747 MPa with total ductility of ∼10.8 % when the volume fraction of non-recrystallized region with high-density L12 nanoparticles (∼46 nm) is up to ∼91 %. Here, the high volume fraction non-recrystallization region is along with the high-density dislocations (∼6.29 × 1014 m−2). Thus, the high strength of present MEA is mainly attributed to L12 nanoparticle precipitation strengthening and dislocation strengthening, which contributes ∼686 MPa and ∼305 MPa to the total yield strength (accounting for ∼66 %), respectively. Therefore, the idea of combining precipitation strengthening with dislocation strengthening offers a paradigm to develop advanced structural materials for modern industrial applications.
| Original language | English |
|---|---|
| Article number | 146138 |
| Journal | Materials Science and Engineering: A |
| Volume | 893 |
| DOIs | |
| State | Published - Feb 2024 |
Keywords
- CoFeNi-Based medium entropy alloy
- Dislocation strengthening
- L1 nanoparticle precipitation strengthening
- Mechanical properties
- Microstructure
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