Abstract
The gradient refinement mechanism of mixed intermetallic particles on equiaxed K492M superalloy was studied. The grain size of K492M superalloy added with mixed intermetallic (CrFeNb and Co3FeNb2) particles could be obviously refined from 3132.89 μm to 608.51 μm while the separate intermetallic (CrFeNb or Co3FeNb2) particles led to little refinement. This superior refinement performance was attributed to the synergistic effect of the mixed particles in promoting the formation of highly potent Ni9Nb phases at the interfaces between the γ matrix and the intermetallic particles. Based on Edge-to-Edge model (E2EM) and orientation identification, the lattice misfit between the γ matrix and Ni9Nb was about 0.27% with the orientation relationship: (200)γ || (200) Ni9Nb, [001] γ || [001] Ni9Nb. A gradient refinement mechanism was proposed to elucidate the role of mixed intermetallic particles. Both intermetallic particles facilitated the formation of Ni9Nb acting as the nucleation sites. However, CrFeNb particles preferentially formed Ni9Nb due to a higher thermodynamic driving force, followed by Co3FeNb2. Consequently, the mixed intermetallic particles provided a greater density of nucleation sites compared to separate additions, leading to enhanced grain refinement.
| Original language | English |
|---|---|
| Article number | 109288 |
| Journal | Intermetallics |
| Volume | 193 |
| DOIs | |
| State | Published - Jun 2026 |
Keywords
- Edge-to-Edge model
- Gradient refinement
- Intermetallic particles
- Lattice misfit
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