Laser Cladding Fabrication of B4C-Reinforced Titanium Matrix Composites: Wear Resistance and Corrosion Performance
Abstract
1. Introduction
2. Experimental Procedure
2.1. Materials and Laser Cladding Process
2.2. Laser Cladding Process
2.3. Mechanical Property Characterization
2.4. Electrochemical Test
3. Results and Discussion
3.1. Surface Morphology
3.2. Cross-Sectional Micrograph and Microstructure
3.3. Microhardness Analysis
3.4. Wear Behavior
3.5. Electrochemical Behavior
4. Conclusions
- (1)
- The addition of B4C makes the micro-cracks disappear on the pure TC4 coating on the surface of the 304L substrate. When the addition amount is more than 12.0 wt.%, significant cracks were observed on the surface of the titanium matrix composite coatings.
- (2)
- The microhardness of the TC4/B4C composite coatings saw a substantial improvement over that of pure TC4 coatings, a phenomenon attributable to the dual role of B4C in both reinforcing and refining the microstructure of the cladding layer. When the addition of B4C was 9 wt.%, the microhardness of titanium matrix composite coatings reached 600 HV0.2, significantly increased by 122.2% compared to the substrate.
- (3)
- For the case of 9 wt.% B4C into TC4 powders, the friction coefficient of the titanium matrix composite coatings was about 0.5019, and the wear rate was 2.82 × 10−4 mm3/N·m, which is 58.22% lower than that of the coating without B4C addition. With the increasing addition of B4C, the groove phenomenon caused by abrasive wear of the coatings was weakened.
- (4)
- The electrochemical tests showed the corrosion resistance of the titanium matrix composite coatings in 3.5 wt.% NaCl solution was dramatically enhanced with the increase in B4C addition. After adding B4C, the self-corrosion potential of the composite coatings was significantly higher than that of the pure TC4 coating, and the self-corrosion current density of TC4@9B4C composite coatings decreased to 3.19 × 10−6 A/cm2.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Element | Al | V | N | Fe | O | Ti |
|---|---|---|---|---|---|---|
| Mass fraction | 6.36 | 4.06 | 0.0112 | 0.05 | 0.077 | Bal. |
| Specimen Number | Specimen Information | B4C/wt.% | TC4/wt.% |
|---|---|---|---|
| S1 | Pure TC4 | 0 | 100 |
| S2 | TC4@3B4C | 3 | 97 |
| S3 | TC4@6B4C | 6 | 94 |
| S4 | TC4@9B4C | 9 | 91 |
| S5 | TC4@12B4C | 12 | 88 |
| Specimen Number | Specimen Information | Width (mm) | Depth (mm) |
|---|---|---|---|
| S1 | Pure TC4 | 4.50 ± 0.15 | 1.85 ± 0.10 |
| S2 | TC4@3B4C | 4.35 ± 0.15 | 1.90 ± 0.10 |
| S3 | TC4@6B4C | 4.25 ± 0.15 | 1.95 ± 0.10 |
| S4 | TC4@9B4C | 4.05 ± 0.15 | 2.05 ± 0.10 |
| Sample | Ecorr, V | Icorr, A/cm2 | Rp, Ω·cm2 |
|---|---|---|---|
| Pure TC4 | −0.355 | 7.98 × 10−6 | 5952.5 |
| TC4@3B4C | −0.327 | 7.28 × 10−6 | 7156.5 |
| TC4@6B4C | −0.279 | 5.20 × 10−6 | 9497.3 |
| TC4@9B4C | −0.182 | 3.19 × 10−6 | 14,230.9 |
| Sample | Rs (Ω.cm2) | CPE1 | Rf (Ω.cm2) | CPE2 | Rct (Ω.cm2) | Cap × 10−4 | Rst (Ω.cm2) | χ2 × 10−3 |
|---|---|---|---|---|---|---|---|---|
| Y01 × 10−4 (Ω−1cm−2sn) n1 | Y02 × 10−4 (Ω−1cm−2sn) n2 | |||||||
| Pure TC4 | 15.79 | 3.730 0.65 | 23.41 | 2.016 0.81 | 7810 | 2.954 | 10,642 | 6.391 |
| TC4@3B4C | 13.40 | 3.474 0.65 | 43.4 | 4.087 0.94 | 19,060 | 1.381 | 10,816 | 1.172 |
| TC4@6B4C | 14.89 | 1.305 0.64 | 77.46 | 2.130 0.75 | 27,400 | 1.325 | 13,630 | 2.738 |
| TC4@9B4C | 14.42 | 0.195 0.74 | 80.31 | 1.491 0.78 | 27,750 | 1.740 | 18,842 | 2.821 |
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Bai, Y.; Lu, P.; Cai, Y.; Xie, Z. Laser Cladding Fabrication of B4C-Reinforced Titanium Matrix Composites: Wear Resistance and Corrosion Performance. Lubricants 2026, 14, 134. https://doi.org/10.3390/lubricants14030134
Bai Y, Lu P, Cai Y, Xie Z. Laser Cladding Fabrication of B4C-Reinforced Titanium Matrix Composites: Wear Resistance and Corrosion Performance. Lubricants. 2026; 14(3):134. https://doi.org/10.3390/lubricants14030134
Chicago/Turabian StyleBai, Yawen, Peipei Lu, Yiming Cai, and Ziwen Xie. 2026. "Laser Cladding Fabrication of B4C-Reinforced Titanium Matrix Composites: Wear Resistance and Corrosion Performance" Lubricants 14, no. 3: 134. https://doi.org/10.3390/lubricants14030134
APA StyleBai, Y., Lu, P., Cai, Y., & Xie, Z. (2026). Laser Cladding Fabrication of B4C-Reinforced Titanium Matrix Composites: Wear Resistance and Corrosion Performance. Lubricants, 14(3), 134. https://doi.org/10.3390/lubricants14030134

