Magnetic Abrasive Finishing of Beta-Titanium Wire Using Multiple Transfer Movement Method
Abstract
:1. Introduction
2. Experimental Equipment and Methods
2.1. Experimental Equipment
2.2. Beta-Titanium Wire Material
2.3. Experimental Methods
3. Experimental Results and Analysis
3.1. Influence of Particle Size
3.2. Influence of Rotational Speed
3.3. Influence of Clearance Distance
3.4. Influence of Multiple Transport Movement
4. Conclusions
- When the grain size of magnetic abrasive material changed at a fixed speed of 1500 rpm, the surface roughness (Ra) was improved to 0.05 μm.
- When the rotational speed was changed and the particle size was fixed at 1 μm, the best results were obtained at a speed of 2000 rpm.
- Better finishing was observed at a finishing gap of 3 mm than 5 mm.
- In all conditions, AFM surface roughness measurements showed that the processed material had a smoother surface than before the machining.
- When finishing using a multi-transfer motion method under optimal conditions, the processing effects were best to worst in the order: vibration with feed rate, vibration only and feed rate only.
- Finally, we found that the magnetic abrasive finishing process using a Nd-Fe-B rare earth permanent magnet showed the best effect when the rotational speed was 2000 rpm and 1 μm abrasive material was used with a 3 mm finishing gap and a multi-transfer motion method.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Component | N | C | H |
Chemical composition (Max%) | 0.03 | 0.08 | 0.015 |
Component | O | Fe | Ti |
Chemical composition (Max%) | 0.18 | 0.2 | Remainder |
Mechanical Properties | Matrix |
---|---|
Tensile strength (MPa) | 345 |
Yield strength (MPa) | 220 |
Elongation (%) | 35 |
Hardness (HV) | 115 |
Elastic modulus (GPa) | 115 |
Density (g/m3) | 4.51 |
Workpiece material | β-titanium wire (L = 50 mm, D = 0.5 mm) |
Electrolytic iron powder | 1.2 g (#200) |
Diamond paste (PCD) | (0.5, 1, and 3 μm) 0.6 g |
CNT particle | 0.02 g |
Lubricant | 0.3 mL (light oil) |
Magnet | Nd-Fe-B permanent magnet (Size: 20 mm × 10 mm × 10 mm) |
Magnetic pole vibration | Amplitude: 2 mm |
Finishing gap | 3 mm, 5 mm |
Rotational speed | 700, 1500, 2000 rpm |
Finishing time | 0, 60, 120, 180, 240, 300 s |
Vibration frequency | 8 Hz |
Feed rate | 80 mm/min |
Element | Chemical Composition (%) before Processing | Chemical Composition (%) after Processing |
---|---|---|
C | 17.85 | 16.40 |
O | 26.68 | 21.68 |
Ti | 55.34 | 61.69 |
Fe | 0.12 | 0.23 |
Total | 100 | 100 |
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Nam, S.S.; Kim, J.S.; Mun, S.D. Magnetic Abrasive Finishing of Beta-Titanium Wire Using Multiple Transfer Movement Method. Appl. Sci. 2020, 10, 6729. https://doi.org/10.3390/app10196729
Nam SS, Kim JS, Mun SD. Magnetic Abrasive Finishing of Beta-Titanium Wire Using Multiple Transfer Movement Method. Applied Sciences. 2020; 10(19):6729. https://doi.org/10.3390/app10196729
Chicago/Turabian StyleNam, Sung Sik, Jeong Su Kim, and Sang Don Mun. 2020. "Magnetic Abrasive Finishing of Beta-Titanium Wire Using Multiple Transfer Movement Method" Applied Sciences 10, no. 19: 6729. https://doi.org/10.3390/app10196729
APA StyleNam, S. S., Kim, J. S., & Mun, S. D. (2020). Magnetic Abrasive Finishing of Beta-Titanium Wire Using Multiple Transfer Movement Method. Applied Sciences, 10(19), 6729. https://doi.org/10.3390/app10196729