Analysis of the Effect of the Tool Shape on the Performance of Pre-Cutting Machines during Tunneling Using Linear Cutting Tests
Abstract
:1. Introduction
2. Materials and Methods
2.1. Linear Cutting Machine
2.2. Cutting Tool of the Pre-Cutting Machine
2.3. Rock Sample
2.4. Linear Cutting Test
- SE = specific energy (J/m3);
- Fc = average cutting force (N);
- l = cutting length (m);
- V = cutting volume (m3).
3. Results
3.1. Relation of the Cutting Force and Rock Chips Generation
3.2. Effect of the Clearance Angle on the Cutting Force
3.3. Effect of the Rake Angle on the Cutting Force
3.4. Effect of the Cutting Volume
3.5. Effect on the Specific Energy
4. Conclusions
- The cutting force and clearance angle have an inverse relationship, and this relation is sharp as the angle increases from 0° to 5°. This sharp reduction occurs because of a dramatic decrease in the friction surface between the cutting tool and rock. Furthermore, when the angle exceeded 10°, it appeared to converge to a certain value.
- Similar to the cutting force, the clearance angle and cutting volume are inversely related; however, unlike the cutting force, the cutting volume decreases linearly as the angle increases. The specific energy decreased significantly from 0° to 5° and seemed to converge to a constant value after 10°, similar to the cutting force.
- The relationship between the rake angle and cutting force was direct and indirect before and after 5°, respectively. When the rake angle was increased from 0° to 5°, the cutting force decreased slightly. However, it increased subsequently owing to the increase in the friction surface of the cutting tool.
- As the rake angle increases, the cutting volume also increases, similar to the cutting force. Even when the rake angle increased from 0° to 5°, the cutting volume decreased slightly, similar to the cutting force. Subsequently, the volume increased with the angle. The specific energy also showed an increasing trend with increasing angles.
- Finally, the effect of the shape of the cutting tool appears to be mainly due to the friction between the cutting tool and rock. Among the shape variables of the cutting tool, the clearance angle has a greater effect on the cutting force, cutting volume, and specific energy. In addition, the linear relationship between the cutting force and cutting volume was confirmed.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Name | Clearance Angle, α (Deg.) | Rake Angle, β (Deg.) |
---|---|---|
C00R20 | 0 | 20 |
C05R20 | 5 | 20 |
C10R20 | 10 | 20 |
C15R20 | 15 | 20 |
C05R00 | 5 | 0 |
C05R05 | 5 | 5 |
C05R10 | 5 | 10 |
C05R15 | 5 | 15 |
Target Strength (MPa) | Elastic Modulus (GPa) | Density (kg/m3) | Poisson’s Ratio | Uniaxial Compressive Strength, UCS (MPa) | Brazilian Tensile Strength, BTS (MPa) |
---|---|---|---|---|---|
20 | 16.92 | 2214 | 0.3 | 18 | 2.06 |
30 | 33.35 | 2363 | 0.3 | 29.3 | 2.18 |
40 | 38.92 | 2382 | 0.3 | 42 | 2.51 |
50 | 44.47 | 2235 | 0.3 | 51.8 | 2.99 |
UCS (MPa) | p (mm) | Clearance Angle (Deg.) | |||||||
---|---|---|---|---|---|---|---|---|---|
0 | 5 | 10 | 15 | ||||||
Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | ||
20 | 3 | 4.74 | 8.47 | 0.88 | 2.44 | 0.39 | 1.52 | 0.41 | 1.38 |
6 | 8.42 | 15.05 | 2.12 | 5.30 | 1.53 | 4.25 | 1.68 | 4.11 | |
9 | 14.45 | 30.80 | 4.84 | 9.65 | 2.52 | 6.18 | 2.85 | 6.43 | |
30 | 3 | 7.48 | 9.75 | 1.65 | 3.68 | 1.05 | 2.54 | 0.99 | 2.40 |
6 | 9.04 | 14.18 | 3.40 | 6.96 | 2.49 | 5.64 | 2.65 | 5.76 | |
9 | 16.00 | 25.37 | 6.42 | 12.92 | 3.82 | 9.50 | 3.91 | 8.45 | |
40 | 3 | 7.98 | 10.68 | 1.86 | 3.55 | 1.51 | 3.08 | 1.23 | 2.53 |
6 | 12.33 | 21.60 | 5.07 | 9.86 | 3.71 | 7.92 | 3.37 | 6.77 | |
9 | 27.09 | 43.05 | 8.50 | 14.54 | 5.91 | 12.50 | 4.66 | 11.12 | |
50 | 3 | 8.66 | 11.28 | 3.02 | 5.94 | 1.97 | 4.85 | 1.45 | 3.57 |
6 | 13.59 | 21.25 | 7.71 | 12.85 | 4.05 | 9.89 | 3.51 | 8.16 | |
9 | 27.28 | 43.99 | 12.02 | 24.05 | 6.81 | 14.43 | 6.42 | 13.73 |
UCS (MPa) | p (mm) | Rake Angle (Deg.) | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
0 | 5 | 10 | 15 | 20 | |||||||
Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | Fc (kN) | F’c (kN) | ||
20 | 3 | 0.65 | 1.59 | 0.64 | 1.82 | 0.66 | 1.79 | 0.72 | 1.80 | 0.88 | 2.17 |
6 | 1.98 | 5.57 | 1.42 | 4.23 | 1.95 | 5.03 | 1.97 | 5.14 | 2.12 | 5.30 | |
9 | 4.04 | 10.11 | 3.91 | 9.01 | 4.29 | 9.24 | 4.38 | 9.50 | 4.84 | 9.65 | |
30 | 3 | 0.94 | 2.90 | 0.88 | 2.52 | 1.03 | 3.25 | 1.33 | 3.38 | 1.65 | 3.68 |
6 | 2.11 | 5.86 | 2.11 | 5.35 | 2.49 | 6.42 | 2.66 | 6.37 | 3.40 | 6.96 | |
9 | 5.25 | 11.00 | 5.11 | 10.71 | 5.14 | 11.45 | 5.58 | 11.64 | 6.42 | 12.92 | |
40 | 3 | 1.35 | 3.07 | 1.18 | 2.89 | 1.37 | 2.97 | 1.69 | 3.56 | 1.86 | 3.55 |
6 | 4.27 | 10.34 | 3.53 | 8.26 | 4.22 | 9.43 | 4.43 | 8.78 | 5.07 | 9.86 | |
9 | 8.22 | 15.79 | 7.62 | 14.41 | 8.71 | 15.34 | 8.43 | 14.98 | 8.50 | 14.54 | |
50 | 3 | 2.59 | 5.57 | 2.45 | 5.10 | 2.89 | 5.90 | 2.78 | 6.25 | 3.02 | 5.94 |
6 | 5.01 | 11.55 | 4.09 | 9.38 | 5.67 | 11.57 | 6.09 | 11.83 | 7.71 | 12.85 | |
9 | 10.18 | 19.33 | 9.07 | 17.46 | 10.50 | 20.12 | 10.73 | 21.22 | 12.02 | 24.05 |
UCS (MPa) | p (mm) | Clearance Angle (Deg.) | |||||||
---|---|---|---|---|---|---|---|---|---|
0 | 5 | 10 | 15 | ||||||
Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | ||
40 | 3 | 3495 | 411.0 | 2880 | 116.2 | 2229 | 122.0 | 2267 | 97.9 |
6 | 11,416 | 194.4 | 10,463 | 87.2 | 8489 | 78.6 | 6892 | 88.1 | |
9 | 23,400 | 208.3 | 21,082 | 72.6 | 19,180 | 55.5 | 17,788 | 47.1 | |
50 | 3 | 4840 | 322.2 | 3585 | 151.8 | 3306 | 107.2 | 2779 | 93.6 |
6 | 12,124 | 201.8 | 11,580 | 119.8 | 9087 | 80.2 | 8030 | 78.7 | |
9 | 20,855 | 235.4 | 20,065 | 107.9 | 19,638 | 62.4 | 15,772 | 73.3 |
UCS (MPa) | p (mm) | Rake Angle (Deg.) | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
0 | 5 | 10 | 15 | 20 | |||||||
Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | Vc (mm3) | SE (MJ/m3) | ||
40 | 3 | 2726 | 89.0 | 2102 | 101.3 | 2551 | 96.6 | 2835 | 107.0 | 2880 | 116.2 |
6 | 10,317 | 74.5 | 9026 | 70.5 | 9258 | 82.0 | 9217 | 86.4 | 10,463 | 87.2 | |
9 | 20,744 | 83.5 | 17,675 | 77.6 | 18,504 | 84.7 | 19,323 | 78.5 | 21,082 | 72.6 | |
50 | 3 | 2574 | 181.4 | 2254 | 195.4 | 2799 | 185.8 | 3014 | 166.0 | 3185 | 170.9 |
6 | 10,027 | 89.9 | 9252 | 79.6 | 9150 | 111.6 | 11,025 | 99.5 | 11,580 | 119.8 | |
9 | 19,448 | 94.2 | 18,693 | 87.3 | 18,457 | 102.4 | 18,866 | 102.4 | 20,065 | 107.9 |
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Kim, H.-e.; Nam, K.-m.; Kyeon, T.-s.; Rehman, H.; Yoo, H.-k. Analysis of the Effect of the Tool Shape on the Performance of Pre-Cutting Machines during Tunneling Using Linear Cutting Tests. Appl. Sci. 2022, 12, 4489. https://doi.org/10.3390/app12094489
Kim H-e, Nam K-m, Kyeon T-s, Rehman H, Yoo H-k. Analysis of the Effect of the Tool Shape on the Performance of Pre-Cutting Machines during Tunneling Using Linear Cutting Tests. Applied Sciences. 2022; 12(9):4489. https://doi.org/10.3390/app12094489
Chicago/Turabian StyleKim, Han-eol, Kyoung-min Nam, Tae-su Kyeon, Hafeezur Rehman, and Han-kyu Yoo. 2022. "Analysis of the Effect of the Tool Shape on the Performance of Pre-Cutting Machines during Tunneling Using Linear Cutting Tests" Applied Sciences 12, no. 9: 4489. https://doi.org/10.3390/app12094489
APA StyleKim, H. -e., Nam, K. -m., Kyeon, T. -s., Rehman, H., & Yoo, H. -k. (2022). Analysis of the Effect of the Tool Shape on the Performance of Pre-Cutting Machines during Tunneling Using Linear Cutting Tests. Applied Sciences, 12(9), 4489. https://doi.org/10.3390/app12094489