Simulation and Experiment Study on Cone End Billet Method in Upsetting Billet with a Large Height-to-Diameter Ratio
Abstract
:1. Introduction
2. Principles of TU and CEBU
3. Finite Element Analysis
3.1. Finite Element Analysis Model
3.2. Simulation Results and Discussion
4. Validation Experiment
4.1. Experimental Procedure
4.2. Experimental Results and Discussion
5. Influence Factors in CEBU
5.1. Friction Coefficient
5.2. Taper Angle of the Billet Cone End
5.3. Height-to-Diameter Ratio
6. Conclusions
- (1)
- In CEBU, the deformation is more concentrated at the billet cone end, and two fan-shaped high-strain zones are correspondingly generated at the billet ends. With increasing reduction, the two fan-shaped strain zones gradually approach each other, resulting in a large compression effect at the billet center;
- (2)
- In CEBU, the frictional effect of upsetting is largely dispersed by metal flows around the conical ends of the billet. Compared with TU, CEBU can produce a much smaller rigid deformation zone at the same reduction ratio, resulting in a much smaller bulging;
- (3)
- Upsetting bulging can be eliminated when the reduction ratio reaches about 50% in CEBU. If the reduction ratio is less than 50%, bulging will occur at the bottom of the billet cone end. However, when the reduction ratio is above 50%, bulging may occur at the billet middle;
- (4)
- Benefiting from the cone end, the deformation character is not sensitive to the friction effect at the billet end in CEBU. It is much better to use a small taper angle to control bulging and improve the compaction effect at the billet center. In addition, the billet HDR should be less than 3.0 to avoid instability and deformation. Regardless of the different friction coefficients, taper angles, and HDR, bulging can only be eliminated with a 50% reduction ratio.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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CEBU | TU | ||
---|---|---|---|
d | 25 mm | d | 25 mm |
h | 40 mm | ht | 62.5 mm |
hc | 16.25 mm | ||
α | 15° |
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Fan, J.; Liu, Z.; Liu, W.; Wang, C. Simulation and Experiment Study on Cone End Billet Method in Upsetting Billet with a Large Height-to-Diameter Ratio. Appl. Sci. 2023, 13, 9523. https://doi.org/10.3390/app13179523
Fan J, Liu Z, Liu W, Wang C. Simulation and Experiment Study on Cone End Billet Method in Upsetting Billet with a Large Height-to-Diameter Ratio. Applied Sciences. 2023; 13(17):9523. https://doi.org/10.3390/app13179523
Chicago/Turabian StyleFan, Junkai, Zhenpeng Liu, Wei Liu, and Chengpeng Wang. 2023. "Simulation and Experiment Study on Cone End Billet Method in Upsetting Billet with a Large Height-to-Diameter Ratio" Applied Sciences 13, no. 17: 9523. https://doi.org/10.3390/app13179523
APA StyleFan, J., Liu, Z., Liu, W., & Wang, C. (2023). Simulation and Experiment Study on Cone End Billet Method in Upsetting Billet with a Large Height-to-Diameter Ratio. Applied Sciences, 13(17), 9523. https://doi.org/10.3390/app13179523