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Numerical simulation of ultrasonic impact treatment (UIT) assisted laser directed energy deposition (DED) CrCoNi medium entropy alloy process

Authors :
Yuheng Yuan
Ruifeng Li
Xiaolin Bi
Min Li
Xiaoqiang Zhang
Yue Zhao
Hangyu Yue
Jiayang Gu
Lei Qiao
Source :
Journal of Materials Research and Technology, Vol 26, Iss , Pp 8472-8484 (2023)
Publication Year :
2023
Publisher :
Elsevier, 2023.

Abstract

In order to enhance the microstructure and mechanical properties of additively manufactured metal parts, the application of ultrasonic impact treatment (UIT) after the additive manufacturing process is introduced as a means to modulate and optimize the material's microstructure and properties. This study systematically investigates the effect of UIT on the distribution of residual stresses in CrCoNi medium entropy alloy (CrCoNi-MEA) through numerical simulation. A suitable finite element model and boundary conditions are established to simulate the UIT assisted laser DED process. The reliability of the finite element model is verified by XRD residual test results and EBSD observation results. The numerical simulation results shows that the specimen's surface exhibited predominantly compressive stress within a specific depth range, with the maximum compressive stress in the vertical direction. Furthermore, it is observed that UIT amplitude, frequency, and impact needle diameter also significantly influenced the residual stresses. By appropriately adjusting the UIT parameters, the magnitude and distribution of residual stresses could be further controlled and regulated. In addition, it is found that multiple UITs at different surface locations exhibited no significant mutual influence between each other.

Details

Language :
English
ISSN :
22387854
Volume :
26
Issue :
8472-8484
Database :
Directory of Open Access Journals
Journal :
Journal of Materials Research and Technology
Publication Type :
Academic Journal
Accession number :
edsdoj.7f8851d9289d4d23905d84405583baba
Document Type :
article
Full Text :
https://doi.org/10.1016/j.jmrt.2023.09.166