Research on Microstructure Evolution Rules of TA18 Titanium Alloy Tube During the Differential Heating Push-Bending Forming Process
Abstract
:1. Introduction
2. Test Schemes
2.1. Materials
2.2. Differential Heating Push-Bending Method
3. Model Construction
3.1. Finite Element Model
3.2. Cellular Automata Model
4. Results and Discussion
4.1. Microstructure Evolution in the Critical Areas During Differential Heating Push-Bending
4.2. The Effect of Heating Temperature on the Evolution of Microstructure
4.3. The Effect of Internal Pressure on the Evolution of Microstructure
4.4. The Effect of Feed Speed on the Evolution of Microstructure
5. Conclusions
- (1)
- Integrating the mesoscale simulation method into the study of the microstructure evolution of TA18 titanium alloy tubes in the differential heating push-bending forming process, key parameters of the CA model were determined based on a high-temperature tensile test as follows: self-diffusion activation energy = 227,132 J·mol−1, hardening constant = 0.07412, recovery constant = 66.2889, and strain-rate sensitivity coefficient = 0.01735.
- (2)
- Combining simulation with experimentation, a finite element model for differential heating push-bending of TA18 titanium alloy tubes was established, and microstructure simulation based on the CA method was conducted. Concurrently, experiments yielded qualified tubes with a small bending radius of 0.9D, and the average grain size of the microstructure in key areas of the formed tubes was measured. The deviation between these measurements and the CA simulation results was within 6%.
- (3)
- During the differential heating push-bending process of TA18 titanium alloy tubes, the average grain size on the outer side of the bend gradually decreases with the increase of plastic deformation, indicating dynamic recrystallization. On the inner side of the bend, no recrystallization phenomenon occurs due to the lower temperature. Different process parameters have a significant impact on the microstructure on the outer side of the bend. Fine grain strengthening effects, which are beneficial for enhancing the comprehensive mechanical properties of the material on the outer side of the bend, can be achieved under the conditions of a heating temperature of 500 °C, internal pressure of 30 MPa, and pusher feed speed of 1 mm/s.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Al | V | Fe | O | C | N | H | Ti |
---|---|---|---|---|---|---|---|
2.0~3.5 | 1.5~3.0 | 0.25 | 0.12 | 0.08 | 0.05 | 0.015 | Bal. |
Parameters | Value |
---|---|
Ambient temperature/°C | 20 |
Convective heat transfer coefficient/(W·m−2·K−1) | 20 |
Heat capacity of tube/(N·mm−2·K−1) | 3.84 |
Interface heat transfer coefficient of tube and die/(W·m−2·K−1) | 1.1 × 104 |
Thermal radiation rate | 0.7 |
Parameters | Value |
---|---|
Cell space/μm2 | 160 × 215 |
Self-diffusion activation energy /(J·mol−1) | 227,132 |
Hardening constant | 0.07412 |
Recovery constant | 66.2889 |
Strain-rate sensitivity coefficient | 0.01735 |
Critical dislocation density/μm2 | 0.02 |
Nucleation rate | 0.001 |
Grain boundary migration velocity/μm·s−1 | 1 × 10−5 |
Shear modulus/Pa | 4.7 × 10−10 |
Burgers vector/m | 3.7 × 10−10 |
Initial average grain size/μm | 11.46 |
Initial dislocation density/μm2 | 0.01 |
Temperature on Outer Side of Bent Tube/°C | Simulated Average Grain Size/μm | Actual Average Grain Size/μm | Deviation/% |
---|---|---|---|
400 | 8.03 | 8.47 | 5.48 |
450 | 8.13 | 8.26 | 1.60 |
500 | 7.76 | 7.88 | 1.55 |
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Li, Y.; Xu, X.; Wei, L.; Fan, Y.; Xie, J.; Luo, S.; Zeng, X. Research on Microstructure Evolution Rules of TA18 Titanium Alloy Tube During the Differential Heating Push-Bending Forming Process. Coatings 2025, 15, 256. https://doi.org/10.3390/coatings15030256
Li Y, Xu X, Wei L, Fan Y, Xie J, Luo S, Zeng X. Research on Microstructure Evolution Rules of TA18 Titanium Alloy Tube During the Differential Heating Push-Bending Forming Process. Coatings. 2025; 15(3):256. https://doi.org/10.3390/coatings15030256
Chicago/Turabian StyleLi, Yanfang, Xuefeng Xu, Liming Wei, Yubin Fan, Jun Xie, Shijian Luo, and Xiang Zeng. 2025. "Research on Microstructure Evolution Rules of TA18 Titanium Alloy Tube During the Differential Heating Push-Bending Forming Process" Coatings 15, no. 3: 256. https://doi.org/10.3390/coatings15030256
APA StyleLi, Y., Xu, X., Wei, L., Fan, Y., Xie, J., Luo, S., & Zeng, X. (2025). Research on Microstructure Evolution Rules of TA18 Titanium Alloy Tube During the Differential Heating Push-Bending Forming Process. Coatings, 15(3), 256. https://doi.org/10.3390/coatings15030256