Tool Wear Characteristics and Strengthening Method of the Disc Cutter for Nomex Honeycomb Composites Machining with Ultrasonic Assistance
Abstract
:1. Introduction
2. Experimental Details
2.1. Evaluation Method for Tool Wear Characteristics
2.2. Tool Strengthening Method
2.3. Experimental Setup
3. Results and Discussion
3.1. The Morphology of Tool Wear Process
3.2. The Analysis of Tool Wear
3.3. The Tool Wear of the Strengthened Disc Cutter
4. Conclusions
- (1)
- An evaluation method was proposed to evaluate the tool wear of the disc cutter quantitatively which was called the radial difference calculation method. Small tears were typical morphology of the tool wear at the beginning of the machining process. Edge chipping and curls occurred with increase of the cutting length. Furthermore, even the surface of the disc cutter was damaged at the end stage of the cutting process.
- (2)
- There was a rapid wear period and a stable wear period during the tool wear process. In the stable wear period, the radial difference of the disc cutter in UACE was significantly smaller than that in conventional cutting experiments. The ultrasonic vibration could significantly reduce the tool wear of the disc cutter by up to 36% after the same machining time.
- (3)
- Vacuum quenching could significantly improve the wear resistance of the disc cutter. By changing the salt bath quenching to vacuum quenching in the heat treatment process, the metallographic grains were refined and their distribution became more uniform. The tool wear of the disc cutter after vacuum quenching treatment in UACE could be reduced up to 64%, compared to conventional cutting experiments if the final value was taken as the reference.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Preheating | Quenching | Tempering | |||
---|---|---|---|---|---|
Temperature /°C | Heating Coefficient /(s/mm) | Temperature /°C | Heating Coefficient /(s/mm) | Cooling Medium | Temperature /°C |
850 | 24 | 1180~1200 | 12~15 | 500~600 °C salt bath | 550 °C × 1 h, 3 times |
500~600 °C vacuum |
Conventional Cutting Experiments | Ultrasonic Assisted Cutting Experiments | |
---|---|---|
The size of workpiece | 205 × 105 × 100 mm | |
The material of the disc cutter | high speed steel (W6Mo5Cr4V2) | |
The size of the disc cutter | wedge angle: 14° outer diameter: 27 mm thickness: 0.9 mm | |
Cutting parameters | spindle speed: 3000 r/min feed rate: 5000 mm/min cutting width: 5 mm cutting depth: 2 mm | |
Ultrasonic parameters | / | frequency: 19,825 Hz amplitude: 20 μm |
Observing Sequence | Cutting Layer | Cutting Length /m | Observing Sequence | Cutting Layer | Cutting Length /m |
---|---|---|---|---|---|
1 | 0.33 | 1.43 | 14 | 28 | 120.54 |
2 | 0.67 | 2.87 | 15 | 36 | 154.98 |
3 | 1 | 4.31 | 16 | 44 | 189.42 |
4 | 1.33 | 5.74 | 17 | 52 | 223.86 |
5 | 1.67 | 7.17 | 18 | 60 | 258.30 |
6 | 2 | 8.61 | 19 | 68 | 292.74 |
7 | 3 | 12.92 | 20 | 76 | 327.18 |
8 | 4 | 17.22 | 21 | 84 | 361.62 |
9 | 6 | 25.83 | 22 | 96 | 413.28 |
10 | 8 | 34.44 | 23 | 108 | 464.94 |
11 | 12 | 51.66 | 24 | 128 | 551.04 |
12 | 16 | 68.88 | 25 | 148 | 637.14 |
13 | 22 | 94.71 |
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Zha, H.; Shang, W.; Xu, J.; Feng, F.; Kong, H.; Jiang, E.; Ma, Y.; Xu, C.; Feng, P. Tool Wear Characteristics and Strengthening Method of the Disc Cutter for Nomex Honeycomb Composites Machining with Ultrasonic Assistance. Technologies 2022, 10, 132. https://doi.org/10.3390/technologies10060132
Zha H, Shang W, Xu J, Feng F, Kong H, Jiang E, Ma Y, Xu C, Feng P. Tool Wear Characteristics and Strengthening Method of the Disc Cutter for Nomex Honeycomb Composites Machining with Ultrasonic Assistance. Technologies. 2022; 10(6):132. https://doi.org/10.3390/technologies10060132
Chicago/Turabian StyleZha, Huiting, Wenjun Shang, Jie Xu, Feng Feng, Hongyun Kong, Enlai Jiang, Yuan Ma, Chao Xu, and Pingfa Feng. 2022. "Tool Wear Characteristics and Strengthening Method of the Disc Cutter for Nomex Honeycomb Composites Machining with Ultrasonic Assistance" Technologies 10, no. 6: 132. https://doi.org/10.3390/technologies10060132
APA StyleZha, H., Shang, W., Xu, J., Feng, F., Kong, H., Jiang, E., Ma, Y., Xu, C., & Feng, P. (2022). Tool Wear Characteristics and Strengthening Method of the Disc Cutter for Nomex Honeycomb Composites Machining with Ultrasonic Assistance. Technologies, 10(6), 132. https://doi.org/10.3390/technologies10060132