Wire Arc Additive and High-Temperature Subtractive Manufacturing of Ti-6Al-4V
Abstract
:1. Introduction
2. Experimental Procedures
2.1. WAAM Machine with Plasma Arc Welding Torch
2.2. Local Shielding to Inhibit Oxidation during the Deposition Process
2.3. Fabrication of the Tensile Test Specimen
2.4. High Temperature Milling of Fabricated Object
3. Mechanical Properties of the Built Titanium Alloy
4. High-Temperature Cutting of the Titanium Alloy Object Built by WAAM
4.1. Relationship between Workpiece Temperature and Initial Cutting Force
4.2. Effect of Tool Wear Progression on Cutting Force
5. Conclusions
- (1)
- The tensile strength and 0.2% proof stress of the fabricated objects met the forging standard JIS H4657. On the other hand, the elongation was around 7%.
- (2)
- When a Ti-6Al-4V workpiece was machined at 300 °C, the cutting force at the initial stage of cutting, when tool wear is negligible, was reduced by about 20% compared to cutting at room temperature.
- (3)
- When milling a high-temperature fabricated object immediately after fabrication, it is estimated that the ceramic insert used will have a higher tool wear rate and shorter tool life than at room temperature. High-temperature milling may be effective in situations such as thin-walled structures where chatter vibration is likely to occur, but cutting at room temperature is preferable from the viewpoint of tool economy.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Welding machine | Trans TIG 5000 Job MV | |
Welding mode | Plasma | |
Welding current | A | 160 |
Torch feed speed | mm/min | 270 |
Arc length | mm | 5 |
Wire material, substrate | Ti-6Al-4V | |
Wire diameter | mm | 1.2 |
Substrate material | Ti-6Al-4V | |
Local shield gas supply | L/min | 20 |
Torch gas flow rate | L/min | 0.8 |
Work material | Ti-6Al-4V | |
Tool diameter | mm | 32 |
Workpiece temperature | °C | Room temperature, 50, 100, 150, 200, 250, 300 |
Number of teeth | 1 | |
Chip diameter | mm | 12.7 |
Cutting speed | m/min | 200 |
Feed rate | mm/tooth | 0.15 |
Axial depth of cut | mm | 0.5 |
Radius depth of cut | mm | 7.75 |
Welding machine | Fronius TransTig 5000 Job MV | ||
Welding mode | Plasma | ||
Welding current | A | 1~3 layers | 140 |
4~8 layers | 130 | ||
9~10 layers | 120 | ||
Torch feed speed | mm/min | 0~8 mm | 400 |
8~95 mm | 180 | ||
95~100 mm | 300 | ||
Back path | 400 | ||
Arc length | mm | 5 | |
Wire/substrate material | Ti-6Al-4V | ||
Wire diameter | 1.2 | ||
Shielding gas | Ar | ||
Shielding gas flow rate | 40 | ||
Plasma torch gas flow rate | 0.8 |
wt% | |||||||
---|---|---|---|---|---|---|---|
Ti | Al | V | O | N | H | ||
Fabricated object (After fabrication) | Rem | 5.45 | 4.18 | 0.232 | 0.0197 | 0.0083 | |
Wire (Before fabrication) | Rem | 6.00 | 4.14 | 0.15 | 0.007 | 0.0062 | |
AMS4911 | Minimum | Rem | 5.50 | 3.5 | |||
Maximum | 6.75 | 4.5 | 0.20 | 0.05 | 0.0125 |
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Miyake, R.; Sasahara, H.; Suzuki, A.; Ouchi, S. Wire Arc Additive and High-Temperature Subtractive Manufacturing of Ti-6Al-4V. Appl. Sci. 2021, 11, 9521. https://doi.org/10.3390/app11209521
Miyake R, Sasahara H, Suzuki A, Ouchi S. Wire Arc Additive and High-Temperature Subtractive Manufacturing of Ti-6Al-4V. Applied Sciences. 2021; 11(20):9521. https://doi.org/10.3390/app11209521
Chicago/Turabian StyleMiyake, Ryotaro, Hiroyuki Sasahara, Atsushi Suzuki, and Seigo Ouchi. 2021. "Wire Arc Additive and High-Temperature Subtractive Manufacturing of Ti-6Al-4V" Applied Sciences 11, no. 20: 9521. https://doi.org/10.3390/app11209521
APA StyleMiyake, R., Sasahara, H., Suzuki, A., & Ouchi, S. (2021). Wire Arc Additive and High-Temperature Subtractive Manufacturing of Ti-6Al-4V. Applied Sciences, 11(20), 9521. https://doi.org/10.3390/app11209521