Investigating the Microscopic Mechanism of Ultrasonic-Vibration-Assisted-Pressing of WC-Co Powder by Simulation
Abstract
:1. Introduction
2. Construction of the Experiment Platform
3. Construction of the Mathematical Model
4. Random Generation of Three-Dimensional Powder Particles
- ①
- To set the powder particle drop area, for example, randomly drop particles with radius R in a cube with length, width, and height of 10, as shown in Figure 5. Their spherical coordinates (x,y,z) must satisfy R ≤ x ≤ 10 − R, R ≤ y ≤ 10 − R, and R ≤ z ≤ 10 − R.
- ②
- To determine whether the randomly generated balls overlap:
- ③
- The number and density of particles generated must be set and controlled.
5. Simulation Model and Parameter Setting
5.1. Material Attributes
5.2. Analysis Step Setting and Meshing
5.3. Contact Properties and Boundary Conditions
6. Results
6.1. Analysis of Particle Flow under the Conventional and the Ultrasonic Vibration-Assisted Compression Processes
6.2. Effects of Ultrasonic Vibration Amplitudes on the Compact Density
6.3. Effects of the Ultrasonic Vibration on the Stress Distribution of the Compact
6.4. Experimental Verification
7. Conclusions
- (1)
- The influence of ultrasonic vibration amplitude on the compact density is great, so to obtain the theoretical results, values of vibration amplitudes were set 1, 2, and 3 μm to verify that the compact density increases gradually with the increase in ultrasonic amplitude. Especially in the early stage of particle deformation, the fluidity between particles is relatively intense, and the particles quickly fill the pores, so the filling density of the powder is significantly increased compared with that under conventional pressing conditions.
- (2)
- The use of ultrasonic vibration in powder pressing can effectively reduce the deformation stress between particles, reduce the residual stress in the compact after pressing, reduce the elastic after-effect, and improve the quality of the compact.
- (3)
- The obtained experimental results verify the developed theoretical model of the pressing process. When the value of the ultrasonic vibration amplitude is 3 μm, the finite element simulation is consistent with the experimental results, but when the density is greater than 5 g/cm3, the error between the experimental value and the simulation value is greater than 6%, mainly because the finite element simulation regards the friction coefficient between particles and between particles and the mold as a constant value during the particle-forming process, while the friction coefficient between particles and between particles and the mold constantly changes during the actual pressing process.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Performance Parameter | ABAQUS Unit | Mold | WC | Co |
---|---|---|---|---|
Density | Tonne/mm3 | 7.89 × 10−9 | 1.56 × 10−9 | 7.9 × 10−10 |
Modulus of elasticity | MPa | 2.09 × 105 | 7.14 × 105 | 2.09 × 105 |
Yield strength | MPa | no | 2380 | 279 |
Poisson’s ratio | no | 0.269 | 0.19 | 0.3 |
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Chen, Y.; Wang, Y.; Huang, L.; Su, B.; Yang, Y. Investigating the Microscopic Mechanism of Ultrasonic-Vibration-Assisted-Pressing of WC-Co Powder by Simulation. Materials 2023, 16, 5199. https://doi.org/10.3390/ma16145199
Chen Y, Wang Y, Huang L, Su B, Yang Y. Investigating the Microscopic Mechanism of Ultrasonic-Vibration-Assisted-Pressing of WC-Co Powder by Simulation. Materials. 2023; 16(14):5199. https://doi.org/10.3390/ma16145199
Chicago/Turabian StyleChen, Yuhang, Yun Wang, Lirong Huang, Binbin Su, and Youwen Yang. 2023. "Investigating the Microscopic Mechanism of Ultrasonic-Vibration-Assisted-Pressing of WC-Co Powder by Simulation" Materials 16, no. 14: 5199. https://doi.org/10.3390/ma16145199
APA StyleChen, Y., Wang, Y., Huang, L., Su, B., & Yang, Y. (2023). Investigating the Microscopic Mechanism of Ultrasonic-Vibration-Assisted-Pressing of WC-Co Powder by Simulation. Materials, 16(14), 5199. https://doi.org/10.3390/ma16145199