Ultrasonic impact treatment (UIT) is a type of surface strengthening technology that can improve the fatigue properties of materials by improving the surface quality, residual stress, and other aspects. In this study, the influence of ultrasonic impact parameters on the surface integrity of nickel alloy 718 was studied. The micro stress concentration caused by the surface morphology was also explored. The cosine and exponential decay functions were used to fit and characterize the distribution of residual stress and work hardening in the surface material. The results showed that the feed rate had the greatest influence on surface roughness, stress concentration, and surface residual stress. It was not appropriate to evaluate the surface hardening effect only by the number of impacts per unit area, the ultrasonic impact parameters such as feed speed and pre extrusion depth should also be considered. The grain refinement was obvious after UIT. The multiobjective optimization of machining parameters was performed with the objective of surface stress concentration and residual stress. A surface with a smaller surface stress concentration factor and larger compressive residual stress can be obtained simultaneously using medium linear velocity, medium pre extrusion depth, and smaller feed rate.
The full text can be downloaded at https://link.springer.com/article/10.1007/s40436-020-00329-8
Zheng Zhou
,
Chang-Feng Yao
,
Yu Zhao
,
Yang Wang
,
Liang Tan
. Effect of ultrasonic impact treatment on the surface integrity of nickel alloy 718[J]. Advances in Manufacturing, 2021
, 9(1)
: 160
-171
.
DOI: 10.1007/s40436-020-00329-8
1. Suárez A, Veiga F, de Lacalle LNL et al (2016) Effects of ultrasonics-assisted face milling on surface integrity and fatigue life of Ni-alloy 718. J Mater Eng Perform 25:5076-5086
2. Suárez A, Veiga F, Polvorosa R et al (2019) Surface integrity and fatigue of non-conventional machined alloy 718. J Manuf Process 48:44-50
3. Bozdana AT, Gindy NNZ (2008) Comparative experimental study on effects of conventional and ultrasonic deep cold rolling processes on Ti-6Al-4V. Mater Sci Technol 24:1378-1384
4. Schulze V, Bleicher F, Groche P et al (2016) Surface modification by machine hammer peening and burnishing. CIRP Ann-Manuf Technol 65:809-832
5. Hessert R, Bamberg J (2008) Ultrasonic impact treatment for surface hardening of the aero-engine material IN718. ICSP 410-415
6. Zhang K, Liu Y, Liu S et al (2019) Coordinated bilateral ultrasonic surface rolling process on aero-engine blades. Int J Adv Manuf Technol 105:4415-4428
7. Cherif A, Pyoun Y, Scholtes B (2010) Effects of ultrasonic nanocrystal surface modification (UNSM) on residual stress state and fatigue strength of AISI 304. J Mater Eng Perform 19:282-286
8. Cao XJ, Pyoun YS, Murakami R (2010) Fatigue properties of a S45C steel subjected to ultrasonic nanocrystal surface modification. Appl Surf Sci 256:6297-6303
9. Li G, Qu SG, Pan YX et al (2016) Effects of the different frequencies and loads of ultrasonic surface rolling on surface mechanical properties and fretting wear resistance of HIP Ti-6Al- 4V alloy. Appl Surf Sci 389:324-334
10. Liu Y, Wang LJ, Wang DP (2011) Study on ultrasonic surface rolling process using FEM analysis. Adv Mater Res 2112-2115
11. Liu Y, Wang L, Wang D (2011) Finite element modeling of ultrasonic surface rolling process. J Mater Process Technol 211:2106-2113
12. Vasylyev MA, Chenakin SP, Yatsenko LF (2016) Ultrasonic impact treatment induced oxidation of Ti6Al4V alloy. Acta Mater 103:761-774
13. Ohta T (2018) Numerical analysis of effect of pin tip radius on residual stress distribution in ultrasonic impact treatment. Mater Trans 59:656-662
14. Liu Y, Zhao X, Wang D (2014) Effective FE model to predict surface layer characteristics of ultrasonic surface rolling with experimental validation. Mater Sci Technol (UK) 30:627-636
15. Lu LX, Sun J, Li L, Xiong QC (2016) Study on surface characteristics of 7050-T7451 aluminum alloy by ultrasonic surface rolling process. Int J Adv Manuf Technol 87:2533-2539
16. Dutta RK, Malet L, Gao H et al (2014) Formation of nanostructures in severely deformed high-strength steel induced by high-frequency ultrasonic impact treatment. Metall Mater Trans A Phys Metall Mater Sci 46:813-830
17. Zhang Q, Hu Z, Su W et al (2017) Microstructure and surface properties of 17-4PH stainless steel by ultrasonic surface rolling technology. Surf Coat Technol 321:64-73
18. Li L, Kim M, Lee S et al (2016) Influence of multiple ultrasonic impact treatments on surface roughness and wear performance of SUS301 steel. Surf Coat Technol 307:517-524
19. Amini AK (2016) Steel 7225 surface ultrafine structure and improvement of its mechanical properties using surface nanocrystallization technology by ultrasonic impact. Int J Adv Manuf Technol 83:1127-1134
20. Cheng M, Zhang D, Chen H et al (2016) Surface nanocrystallization and its effect on fatigue performance of high-strength materials treated by ultrasonic rolling process. Int J Adv Manuf Technol 83:123-131
21. He B, Deng H, Jiang M et al (2018) Effect of ultrasonic impact treatment on the ultra high cycle fatigue properties of SMA490BW steel welded joints. Int J Adv Manuf Technol 96:1571-1577
22. Ma C, Andani MT, Qin H et al (2017) Improving surface finish and wear resistance of additive manufactured nickel-titanium by ultrasonic nano-crystal surface modification. J Mater Process Technol 249:433-440
23. Panin AV, Kazachenok MS, Kozelskaya AI et al (2017) The effect of ultrasonic impact treatment on the deformation behavior of commercially pure titanium under uniaxial tension. Mater Des 117:371-381
24. Arola D (2009) Surface texture and the stress concentration factor for FRP components with holes. J Compos Mater 37:1439-1460
25. Ulutan D, Arisoy YM, özel T et al (2014) Empirical modeling of residual stress profile in machining nickelbased superalloys using the sinusoidal decay function. Procedia CIRP 13:365-370