Study on the Cutting Performance of CrN/AlCrN-Coated Carbide PCB Milling Cutter
Abstract
:1. Introduction
2. Experimental Details
2.1. Coating Preparation
2.2. Structural and Performance Characterization Methods
2.3. Milling Experiment
3. Results and Discussion
3.1. Microscopic Morphology of the Coating
3.2. Coating Composition and Phase Composition
3.3. Hardness and Surface Roughness of the Coating
3.4. Bonding Strength of the Coating
3.5. Tribological Test
3.6. Milling Experiment
4. Conclusions
- (1)
- The surface of the CrN/AlCrN coating is dense and free of obvious defects, and the multilayer structure has no obvious boundary. The coating consists of Al, Cr and N elements and is uniformly distributed. After coating, the roughness increased by 50 nm, the microhardness increased by 59.1% and the bonding force was 66.45 N.
- (2)
- In the tribological test, the friction coefficient increased with the increase in load. The average friction coefficient at the load of 12 N was 0.4. The wear mechanisms of the coating were adhesive wear and oxidative wear. At the load of 20 N, the average friction coefficient was 0.45, and the wear mechanisms were abrasive and oxidative wear.
- (3)
- The coated PCB milling cutter had better milling performance and higher service life at higher spindle speed and lower feed rate for slot machining. As the feed rate increased, the wear of the coated tool gradually increased at the same milling length. When the spindle speed was 42,000 rpm and the feed rate was 2 mm/s, the total milling length of the printed circuit board processed by the coated milling tool was up to 11.35 m.
- (4)
- Compared with the uncoated milling cutter, the coated milling cutter showed better wear resistance and cutting performance. Under suitable milling parameters, the service life of the coated milling cutter quadrupled over the uncoated milling cutter. The failure of the coated milling cutters was mainly in the form of severe wear, blade peeling and built-up edge.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Model | WC% | Co% | Graininess |
---|---|---|---|
K05 | 93.00 | 6.20 | 0.4 |
External Diameter | Blade Length | Full Length | Number of Blades | Lateral Groove Depth | Tooth Height | Spiral Angle |
---|---|---|---|---|---|---|
1.0 mm | 28.0 mm | 37.0 mm | 7 | 0.070 mm | 0.16 mm | 12° |
Programs | Spindle Speed (rpm) | Feeding Speed (mm/s) |
---|---|---|
Program 1 | 42,000 | 2 |
Program 2 | 42,000 | 4 |
Program 3 | 42,000 | 8 |
Program 4 | 38,000 | 2 |
Program 5 | 38,000 | 4 |
Program 6 | 38,000 | 8 |
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Wang, R.; Yang, H.; Guo, Z.; Wei, S.; Lin, R. Study on the Cutting Performance of CrN/AlCrN-Coated Carbide PCB Milling Cutter. Coatings 2022, 12, 556. https://doi.org/10.3390/coatings12050556
Wang R, Yang H, Guo Z, Wei S, Lin R. Study on the Cutting Performance of CrN/AlCrN-Coated Carbide PCB Milling Cutter. Coatings. 2022; 12(5):556. https://doi.org/10.3390/coatings12050556
Chicago/Turabian StyleWang, Renxin, Hu Yang, Ziming Guo, Shasha Wei, and Rongchuan Lin. 2022. "Study on the Cutting Performance of CrN/AlCrN-Coated Carbide PCB Milling Cutter" Coatings 12, no. 5: 556. https://doi.org/10.3390/coatings12050556
APA StyleWang, R., Yang, H., Guo, Z., Wei, S., & Lin, R. (2022). Study on the Cutting Performance of CrN/AlCrN-Coated Carbide PCB Milling Cutter. Coatings, 12(5), 556. https://doi.org/10.3390/coatings12050556