High-Speed Rotary Ultrasonic Elliptical Milling of Ti-6Al-4V Using High-Pressure Coolant
Abstract
:1. Introduction
2. Principle of Tool-Workpiece Separation Cooling Effect in HRUEM
2.1. Kinematic Analysis of Tool Tip Trajectories in HRUEM
2.2. The Principle of Tool-Workpiece Separation in HRUEM
2.3. Analysis of High-Pressure Coolant in HRUEM
3. Material and Experimental Procedures
3.1. Workpiece Material
3.2. Machining Setup
3.3. Testing Method
4. Results and Discussion
4.1. Tool Life
- (1)
- Average flank wear VB = 0.2 mm,
- (2)
- Maximum flank wear VBmax = 0.3 mm,
- (3)
- Excessive chipping/flaking or catastrophic fracture of the cutting edge.
4.2. Material Removal Volume
4.3. The Average Integral Temperature over the Tool-Chip Interface
4.4. Tool Wear Mechanism
5. Conclusions
- (1)
- The tool life was significantly extended in both CM and HRUEM by using HPC and the effect of cooling enhanced as the coolant pressure escalated. However, the cooling effect in HRUEM was much greater than that in CM under same coolant condition. At the coolant pressure of 200 bar, the tool life in HUREM was 7.6 times of that in CM at 80 m/min, 5.2 times of that in CM at 120 m/min and 3.4 times of that in CM at 160 m/min.
- (2)
- At 200 bar HPC and 80 m/min cutting speed, the MRV of HRUEM increased by about 657% compared to that of CM. In contrast of the CM at a cutting speed of 80 m/min and 200 bar HPC, the MRV in HRUEM at the cutting speed of 160 m/min and 200 bar HPC went up by about 135% and the material removal rate (MRR) was also doubled in HRUEM. Therefore, HRUEM with HPC was an effective method for milling of titanium alloys with high efficiency.
- (3)
- When the cutting speed was 80 m/min with 200 bar HPC, the cutting temperature of the workpiece in HRUEM was reduced by 24.1% compared to that of CM. The significant temperature reduction in HRUEM was a result of much higher heat convection efficiency between the cutting edge and coolant by the intermittent cutting mode achieved in this method.
- (4)
- HPC could offer a cooling effect and lubrication effect for tools in CM, however, the coolant still failed to reach the cutting edge, resulting in tool wear modes of severe adhesion wear and oxidative wear in CM. When HPC was applied in HRUEM, the cooling and lubrication efficiency could be significantly enhanced with the combination of high-pressure coolant and tool-workpiece periodic separation. As a result, the tool wear mode of adhesive wear was able to significantly inhibit in HRUEM.
Author Contributions
Funding
Conflicts of Interest
References
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Material | Density (kg/m3) | Hardness (HV) | Elastic Modulus (GPa) | Melting Temperature (°C) | Thermal Conductivity (W/mK) | Yield Strength (MPa) | |
---|---|---|---|---|---|---|---|
Ti-6Al-4V | 4429.0 | 320.0 | 114.0 | 1667.0 | 6.70 | 835.0 |
Base Material | Coating | Number of Cutting Edges | Diameter (mm) | Helix Angle (°) | Rake Angle (°) | Relief Angle (°) |
---|---|---|---|---|---|---|
Carbide | TiAlN | 4 | 12 | 38 | 10 | 8 |
Milling Conditions | Axial cutting depth (mm) | 0.2 |
Radial cutting depth (mm) | 5 | |
Feed speed per tooth (mm/z) | 0.015 | |
Nominal cutting speed (m/min) | 80, 120, 160 | |
Type of milling | CM and HRUEM | |
Vibration Conditions | Amplitudes A and B (m) | and |
Frequency (Hz) | 17,880 | |
Angle shift () | 90 | |
Cooling Conditions | coolant pressure (bar) | 50, 200 |
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Zhang, M.; Zhang, D.; Guo, H.; Gao, Z.; Geng, D.; Liu, J.; Jiang, X. High-Speed Rotary Ultrasonic Elliptical Milling of Ti-6Al-4V Using High-Pressure Coolant. Metals 2020, 10, 500. https://doi.org/10.3390/met10040500
Zhang M, Zhang D, Guo H, Gao Z, Geng D, Liu J, Jiang X. High-Speed Rotary Ultrasonic Elliptical Milling of Ti-6Al-4V Using High-Pressure Coolant. Metals. 2020; 10(4):500. https://doi.org/10.3390/met10040500
Chicago/Turabian StyleZhang, Mingliang, Deyuan Zhang, Hailin Guo, Ze Gao, Daxi Geng, Jiajia Liu, and Xinggang Jiang. 2020. "High-Speed Rotary Ultrasonic Elliptical Milling of Ti-6Al-4V Using High-Pressure Coolant" Metals 10, no. 4: 500. https://doi.org/10.3390/met10040500
APA StyleZhang, M., Zhang, D., Guo, H., Gao, Z., Geng, D., Liu, J., & Jiang, X. (2020). High-Speed Rotary Ultrasonic Elliptical Milling of Ti-6Al-4V Using High-Pressure Coolant. Metals, 10(4), 500. https://doi.org/10.3390/met10040500