Abstract
This paper investigates the relationship between microstructural features and small-angle scattering (SAS) patterns in Ni-based superalloys using a combined phase-field and SAS simulation approach coupled with microstructure analyses. The simulated SAS patterns accurately capture key experimental observations previously reported in the literature, including the time-dependent transition from circular to square-shaped precipitates and the development of anisotropic SAS patterns. Importantly, our analysis reveals the correlations between characteristic length scales extracted from SAS profiles and microstructural descriptors, such as precipitate size and inter-precipitate distance. These findings provide a comprehensive understanding of the link between SAS profiles and microstructure evolution in Ni-based superalloys, offering valuable insights for materials characterization and design.1
| Original language | English |
|---|---|
| Article number | 114086 |
| Journal | Computational Materials Science |
| Volume | 258 |
| DOIs | |
| State | Published - Aug 2025 |
| Externally published | Yes |
Keywords
- Microstructure
- Patterns
- Phase-field
- Simulations
- Small angle scattering
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