Progress on the Effect and Mechanism of Ultrasonic Impact Treatment on Additive Manufactured Metal Fabrications
Abstract
:1. Introduction
2. Working Principle and Role of Various Process Parameters
3. Effect of UIT on AM Fabrications
3.1. Microstructure Improvement and Grain Refinement
3.2. Stress Reconstruction
3.3. Surface Roughness Improvement
3.4. Defect Healing
3.5. Comprehensive Performance Strengthening
4. Summary and Prospect
- (1)
- The process is hoped to be stable and controllable when using UIT to strengthen additively manufactured fabrications. Good repeatability is desired during each impact, and the strengthening effect can be more easily observed and quantifiable. However, a certain degree of randomness exists in the operation since UIT is a complex instantaneous non-stationary process with high strain. So, it isn’t easy to fully reproduce the previous impact effect even if the main impact process parameters are fixed. Therefore, in future work, the stability and reproducibility of the UIT effect should be improved through precise process control. And visual assessment of the quantitative UIT effect should be realized to provide a basis for the refinement processing in the practical application of additive manufacturing.
- (2)
- Researchers prefer to pay more attention to the strengthening effect during the process of AM assisted by UIT. However, at this stage, the research on the strengthening mechanism of UIT still stays at a relatively superficial level. And the systematic analysis of the action mechanism of different process parameter matching is insufficient. Therefore, an in-depth and systematic study on the strengthening mechanism between UIT and AM metal fabrications from the perspectives of plastic deformation, ultrasonic oscillation, and stress wave should be conducted in conjunction with the physical process of UIT. This work can provide a theoretical basis and process support for the future development of UIT parameter settings when dealing with materials with different physical properties in the AM process.
- (3)
- UIT, a method to strengthen AM metal fabrications, can significantly affect the strengthening effect by coupling the stress field, flow field, and temperature field in the process of AM assisted by UIT. Therefore, how to make scientific cooperation between UIT and AM, to realize the targeted regulation on the microstructure, performance, and stress state of fabrications, and to effectively enhance the effect of UIT is one of the critical issues that need to be focused on in the future. The related research will help to take advantage of the combined technology of UIT and AM, promoting a more comprehensive application of this technology in the manufacturing industry.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Process Parameter | Effects of UIT | Ref. | |
---|---|---|---|
Total number of impacts | Impact number | Plastic deformation, effective depth, residual stress and defects | [27,28,29,30] |
Impact frequency | Stress distribution | [31,32] | |
Impact coverage | Indentation profile, residual stress and crack propagation | [33] | |
Number of pins | residual stress | [31] | |
Impact duration | Effective depth and residual stress | [32] | |
Impact interval distance | Equivalent plastic strain, effective depth and residual stress | [34] | |
Impact velocity | Equivalent plastic strain, Indentation profile, residual stress, crack arrest stress and propagation rate | [33,35] | |
Impact amplitude | Effective depth and residual stress | [36] | |
Impact load | Plastic deformation, residual stress and crack density | [32] | |
Impact form | Impact angle | Indentation profile and residual stress | [37,38] |
Pin shape (pin length, pin sharpness, pin diameter) | Indentation profile, residual stress and effective depth | [34] |
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Sun, L.; Huang, L.; Wu, P.; Huang, R.; Fang, N.; Xu, F.; Xu, K. Progress on the Effect and Mechanism of Ultrasonic Impact Treatment on Additive Manufactured Metal Fabrications. Crystals 2023, 13, 995. https://doi.org/10.3390/cryst13070995
Sun L, Huang L, Wu P, Huang R, Fang N, Xu F, Xu K. Progress on the Effect and Mechanism of Ultrasonic Impact Treatment on Additive Manufactured Metal Fabrications. Crystals. 2023; 13(7):995. https://doi.org/10.3390/cryst13070995
Chicago/Turabian StyleSun, Laibo, Lujun Huang, Pengbo Wu, Ruisheng Huang, Naiwen Fang, Fujia Xu, and Kai Xu. 2023. "Progress on the Effect and Mechanism of Ultrasonic Impact Treatment on Additive Manufactured Metal Fabrications" Crystals 13, no. 7: 995. https://doi.org/10.3390/cryst13070995
APA StyleSun, L., Huang, L., Wu, P., Huang, R., Fang, N., Xu, F., & Xu, K. (2023). Progress on the Effect and Mechanism of Ultrasonic Impact Treatment on Additive Manufactured Metal Fabrications. Crystals, 13(7), 995. https://doi.org/10.3390/cryst13070995