Abstract
The γ-TiAl alloy is widely used in aerospace and energy industries due to its excellent high-temperature stability and lightweight properties. However, its poor machinability often leads to suboptimal surface quality and significant tool wear. Induction-assisted milling, which introduces high-frequency inductive heating, enhances the material’s plasticity and reduces cutting forces, thereby improving milling performance. This study experimentally compares the effects of conventional milling and induction-assisted milling on the surface integrity and tool wear of γ-TiAl alloys under different material removal rates. The results demonstrate that by selecting appropriate milling parameters induction-assisted milling can reduce cutting forces by over 20%, decreases surface roughness by more than 30%, and significantly improves the surface quality of γ-TiAl alloys, with no significant increase in tool wear. This research offers valuable experimental and theoretical insights for the application of induction-assisted milling in the machining of difficult-to-machine materials.
| Original language | English |
|---|---|
| Pages (from-to) | 108-113 |
| Number of pages | 6 |
| Journal | Procedia CIRP |
| Volume | 144 |
| DOIs | |
| State | Published - 2026 |
| Event | 8th CIRP Conference on Surface Integrity, CIRP CSI 2026 - Yokohama, Japan Duration: 19 May 2026 → 22 May 2026 |
Keywords
- Induction-assisted milling
- Surface integrity
- Tool wear
- γ-TiAl alloys
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