Abstract
The effect of undercooling ΔT and the interface energy anisotropy parameter ϵ4 on the shape of the equiaxed dendritic tip has been investigated by using a quantitative phase-field model for solidification of binary alloys. It was found that the tip radius ρ increases and the tip shape amplitude coefficient A4 decreases with the increase of the fitting range for all cases. The dendrite tip shape selection parameter σ* decreases and then stabilizes with the increase of the fitting range, and σ* increases with the increase of ϵ4. The relationship between σ* and ϵ4 follows a power-law function σ ∗ ∝ ϵ 4 α , and α is independent of ΔT but dependent on the fitting range. Numerical results demonstrate that the predicted σ* is consistent with the curve of microscopic solvability theory (MST) for ϵ4 < 0.02, and σ* obtained from our phase-field simulations is sensitive to the undercooling when ϵ4 is fixed.
| Original language | English |
|---|---|
| Article number | 096103 |
| Journal | Chinese Physics B |
| Volume | 33 |
| Issue number | 9 |
| DOIs | |
| State | Published - 1 Aug 2024 |
Keywords
- dendritic structure
- interface energy anisotropy
- phase-field simulations
- tip shape selection parameter