Effect of Laser Energy Density on Surface Morphology, Composition and Cleaning Mechanism of TC1 Titanium Alloy During Nanosecond Laser Cleaning
Highlights
- After cleaning at a pressure of 6.37 J/cm2, the oxygen content on the surface decreased to 4.87%.
- The surface roughness was as low as 0.37 µm, and the microhardness was 268.9 HV.
- The mechanism of oxide layer laser removal mainly involves laser ablation induced by plasma impact.
- Revealed the optimal process parameters.
- Reduces the roughness while having a minimal impact on hardness.
- The mechanism of oxide layer removal is explained.
Abstract
1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Macroscopic Morphology Analysis
3.2. Surface Composition and Microstructure Analysis
3.3. XPS Analysis
3.4. Three-Dimensional Morphology and Surface Roughness Analysis
3.5. Surface Hardness Analysis
3.6. Dynamic Removal Behavior Analysis
4. Conclusions
- (1)
- At a pressure of 6.37 J/cm2, the oxide film of TC1 titanium alloy was successfully removed while maintaining the integrity of the substrate. The XPS results showed that the intensity of the Ti0 peak was the highest, while the intensity of the Ti4+ peak decreased significantly, and the oxygen content dropped to the lowest level of 4.87%. The sample presented a metallic lustrous silver-white color.
- (2)
- At 6.37 J/cm2, surface quality was optimal. While the oxide layer was removed, the molten titanium alloy matrix exhibited excellent fluidity. After recrystallization, a relatively flat and smooth surface was obtained, with the specimen’s surface roughness significantly reduced to 0.37 µm.
- (3)
- After manual polishing, the surface hardness value of the specimen was 265.9 HV. Following cleaning at the optimal energy density, the surface hardness value increased to 268.9 HV, indicating that laser cleaning slightly enhanced the surface hardness of the titanium alloy. Laser cleaning had minimal adverse effects on the mechanical properties of the titanium alloy substrate and can serve as an alternative method for oxide layer removal, replacing traditional manual polishing.
- (4)
- The removal mechanism of the oxide layer on TC1 titanium alloy primarily involves laser ablation and plasma impact. At lower laser energy densities (2.55 J/cm2–6.37 J/cm2), laser ablation dominates the removal process. At higher laser energy densities (6.37 J/cm2–8.91 J/cm2), plasma impact becomes the predominant mechanism, leading to secondary oxidation phenomena.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Name | Parameter Value |
|---|---|
| Wavelength (nm) | 1064 |
| Power (W) | 10–1000 |
| Pulse width (ns) | 100 |
| Repetition frequency (kHz) | 10 |
| Diameter of the focused spot (mm) | 1 |
| Mirror rotation speed (mm/s) | 100–10,000 |
| Step distance (µm) | 5–10,000 |
| Scanning width (mm) | 10–100 |
| Laser head movement speed (mm/s) | 0–10,000 |
| Scanning format (mm2) | 100 × 100 |
| Parameters | Parameter Value |
|---|---|
| Single-pulse energy density (J/cm2) | 2.55, 6.37, 8.91 |
| The overlap rate of light spots on the x/y axes (%) | 70 |
| Frequency (kHz) | 10 |
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Chen, Y.; Sun, H.; Li, X.; Song, H.; Han, Z.; Nie, J.; Zhang, D.; Xu, J.; Guo, B. Effect of Laser Energy Density on Surface Morphology, Composition and Cleaning Mechanism of TC1 Titanium Alloy During Nanosecond Laser Cleaning. Materials 2026, 19, 1695. https://doi.org/10.3390/ma19091695
Chen Y, Sun H, Li X, Song H, Han Z, Nie J, Zhang D, Xu J, Guo B. Effect of Laser Energy Density on Surface Morphology, Composition and Cleaning Mechanism of TC1 Titanium Alloy During Nanosecond Laser Cleaning. Materials. 2026; 19(9):1695. https://doi.org/10.3390/ma19091695
Chicago/Turabian StyleChen, Yang, Haixiang Sun, Xuecheng Li, Hongyan Song, Zexuan Han, Jinhao Nie, Donghe Zhang, Jie Xu, and Bin Guo. 2026. "Effect of Laser Energy Density on Surface Morphology, Composition and Cleaning Mechanism of TC1 Titanium Alloy During Nanosecond Laser Cleaning" Materials 19, no. 9: 1695. https://doi.org/10.3390/ma19091695
APA StyleChen, Y., Sun, H., Li, X., Song, H., Han, Z., Nie, J., Zhang, D., Xu, J., & Guo, B. (2026). Effect of Laser Energy Density on Surface Morphology, Composition and Cleaning Mechanism of TC1 Titanium Alloy During Nanosecond Laser Cleaning. Materials, 19(9), 1695. https://doi.org/10.3390/ma19091695
