Abstract
Shear spinning is proposed as an industrially scalable route to engineer gradient dislocation architectures in the Fe40Ni36Al13Cr10Mo1 hypoeutectic dual-phase high-entropy alloy (DP-HEA), addressing the longstanding challenge of introducing high-density, non-uniform dislocation structures at engineering-relevant scales. The unique triaxial stress state activates multiple non-coplanar slip systems, generating a three-dimensional cellular dislocation network in the FCC matrix at a density of 4.54 × 10 ¹ ⁵ m⁻², which is ∼15% higher than that produced by conventional cold rolling (3.93 × 10 ¹⁵ m⁻²). This high-energy defect state accelerates co-precipitation of coherent L1₂ and B2 phases during aging, with L1₂ contributing ∼20% to the total yield strength versus ∼15% in the cold-rolled-and-aged counterpart. The shear-spun-and-aged alloy achieves a yield strength of 1283 MPa, an ultimate tensile strength of 1512 MPa, and a tensile elongation of 8.2%, representing a ∼61% enhancement over the solution-treated state and ∼56 MPa above the cold-rolled-and-aged condition. A fundamental mechanistic transition from dislocation hardening (∼900 MPa) in the as-spun state to synergistic dislocation–precipitation strengthening after aging demonstrates shear spinning as a practical industrial strategy for concurrently tailoring dislocation configurations and precipitation kinetics to overcome the strength–ductility trade-off in multiphase HEAs.
| Original language | English |
|---|---|
| Article number | 189246 |
| Journal | Journal of Alloys and Compounds |
| Volume | 1075 |
| DOIs | |
| State | Published - 5 Jul 2026 |
Keywords
- Hypoeutectic high-entropy alloy
- Mechanical properties
- Microstructure
- Shear spinning
- Strengthening contribution
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