Abstract
This study elucidates the intrinsic precipitation mechanisms regarding the inherent competition between the θ′-Al2Cu and T1-Al2CuLi phases and the role of microalloying elements. Crystallographic strain analysis suggests that T1 requires lower strain accommodation than θ′, indicating a lower strain-energy contribution to its nucleation, consistent with experimental observations showing T1 dominance in Li-containing alloys even in the absence of microalloying additions. A distinct precipitation evolution pathway is identified in the LPBF-processed Al-Li-Cu-(Mg) alloy. The main Al-Li-Cu-Mg precipitation pathway evolves from SSS to δ′, then to S′ + T1 and S′ + θ′ + T1 + χ, and finally to a T1-dominated state. During prolonged aging, Ti/Zr-rich L12-type Al3X particles appear through a separate late-stage Ti/Zr-related pathway and are associated with the secondary hardness peak. During early aging, the incorporation of thermodynamically metastable S′ into δ′/θ′/δ′ composite structures increases interfacial energy, reduces the thermal stability of θ′, and accelerates its dissolution, thereby further favoring T1 development. At prolonged aging stages, secondary β′-Al3(Ti,Zr) particles precipitate, which contributes an additional strengthening effect and thus produces a distinct secondary hardness peak. These results establish a coherent mechanistic framework for precipitation competition and microstructure evolution in alloys.
| Original language | English |
|---|---|
| Article number | 189678 |
| Journal | Journal of Alloys and Compounds |
| Volume | 1079 |
| DOIs | |
| State | Published - 15 Aug 2026 |
Keywords
- Al-Li-Cu alloys
- Microalloying effects
- Phase transformation pathway
- Secondary β′-Al(Ti,Zr)
- θ′/T competition
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