Wear Characteristics of WC-Co Cutting Tools Obtained by the U-FAST Method During Particleboard Milling
Abstract
1. Introduction
2. Materials and Methods
2.1. Tool Material
2.2. Workpiece
2.3. Wear Measurement
2.4. Cutting Edge Analysis
3. Results and Discussion
4. Conclusions
- It has been demonstrated that tools with submicron WC grain sizes of 0.4 and 0.8 µm exhibit the longest tool life.
- The deterioration of the carbide cutting tools milling the chipboard was attributed to the preferential WC grain dropout, which was followed by fracture and chipping. The underlying wear mechanisms were identified as abrasive wear and adhesive wear.
- The impact of WC grain size on tool wear is a significant consideration, with nanometric particles having a notable effect on tool durability due to their tendency to cause spalling and fracture.
- It is important to continue developing WC-Co tools with nanometric WC grain sizes. Consider modifying the chemical composition or optimizing the cutting edge geometry to achieve improved strength and cutting performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Blades | Avg. WC Grain Size (µm) | Chemical Compositions | Mechanical Properties | Literature | ||
---|---|---|---|---|---|---|
Cemented Carbide | WC (wt.%) | Co (wt.%) | Hardness (HV30) | KIC (MPam1/2) | ||
WC(0.8 µm)_4Co | 0.8 | 96 | 4 | 2085 | 8.36 | [29] |
WC(0.4 µm)_4Co | 0.4 | 96 | 4 | 2270 | 8.33 | [29] |
WC(0.1 µm)_5Co | 0.1 | 95 | 5 | 2192 | 9.27 | [30] |
Wood-Based Board | Density (kg/cm3) | Brinell Hardness | Bending Strength (%) | Modulus of Elasticity (MPa) | Sand Content (%) |
---|---|---|---|---|---|
Three-layer particleboard | 649 | 2.6 | 8.7 | 2212 | 0.185 |
Spindle Rotation (rpm) | Feed Rate per Tooth, Fz (mm) | Feed Rate, u (m/min) |
---|---|---|
15,000 | 0.25 | 3.75 |
Mean Area Under Wear Curve (mm2) | |
---|---|
WC(0.8 µm)_4Co | 0.26 |
WC(0.4 µm)_4Co | 0.33 |
WC(0.1 µm)_5Co | 0.31 |
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Wachowicz, J.; Bałaga, Z.; Podziewski, P. Wear Characteristics of WC-Co Cutting Tools Obtained by the U-FAST Method During Particleboard Milling. Materials 2025, 18, 3907. https://doi.org/10.3390/ma18163907
Wachowicz J, Bałaga Z, Podziewski P. Wear Characteristics of WC-Co Cutting Tools Obtained by the U-FAST Method During Particleboard Milling. Materials. 2025; 18(16):3907. https://doi.org/10.3390/ma18163907
Chicago/Turabian StyleWachowicz, Joanna, Zbigniew Bałaga, and Piotr Podziewski. 2025. "Wear Characteristics of WC-Co Cutting Tools Obtained by the U-FAST Method During Particleboard Milling" Materials 18, no. 16: 3907. https://doi.org/10.3390/ma18163907
APA StyleWachowicz, J., Bałaga, Z., & Podziewski, P. (2025). Wear Characteristics of WC-Co Cutting Tools Obtained by the U-FAST Method During Particleboard Milling. Materials, 18(16), 3907. https://doi.org/10.3390/ma18163907