Fatigue Limit Improvement and Rendering Surface Defects Harmless by Shot Peening for Carburized Steel
Abstract
:1. Introduction
2. Experimental Method
2.1. Material and Specimen
2.2. Measurement of the Surface Roughness, Vickers Hardness, and Residual Stress
2.3. Fatigue Test Method
3. Results
3.1. Surface Roughness
3.2. Hardness Distribution
3.3. Residual Stress Distribution
3.4. Fatigue Test Results
- (a)
- The fatigue limit of the slit + SP specimen increased to more than 95 % of that of the SP specimen.
- (b)
- More than half the specimens fractured outside the slit.
4. Discussion
4.1. Evaluation of Defect Size Rendered Harmless by Shot Peening
4.2. Application of Shot Peening to the Remanufacturing Process
5. Conclusions
- The hardness of carburized steel increased to 100 HV owing to deformation-induced martensite and work hardening caused by shot peening. The maximum compressive residual stress was 1400 MPa, and the crossing point was approximately 300 µm in the shot-peened specimen. A decrease in compressive residual stress after the fatigue test did not occur. This was due to the extremely high surface hardness of carburized steel.
- The fatigue limit of the smooth specimen increased by approximately 31% after the shot peening. This was attributed to the increase in surface hardness due to shot peening and the fact that the compressive residual stresses were not reduced during the fatigue tests.
- The fatigue limit of the slit + SP with slit depths of 0.15 and 0.20 mm increased by 49% compared to the fatigue limit of the non-SP specimen. Furthermore, these fatigue limits were equivalent to those of the smooth specimens with SP. Therefore, a semicircular slit at least 0.20 mm deep could be rendered harmless by shot peening. Therefore, the effectiveness of shot peening in rendering surface defects harmless was clarified for carburized steels with Vickers hardness over 700 HV.
- The defect size rendered harmless by SP (amax) was evaluated on the basis of the fracture mechanics. The estimated amax was 0.21 mm. This evaluation result was consistent with the experimental results. Therefore, the defect size rendered harmless by shot peening can be successfully predicted for shot-peened carburized steel with a surface hardness larger than 700 HV as a function of the fracture mechanics.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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C | Si | Mn | P | S | Cu | Ni | Cr | Mo |
---|---|---|---|---|---|---|---|---|
0.23 | 0.31 | 0.81 | 0.013 | 0.017 | 0.07 | 0.05 | 1.21 | 0.23 |
Media | Conditioned Cut Wire Of Steel |
---|---|
Media diameter | 0.60 mm |
Media hardness | 700 HV |
Projection method | Direct air pressure type |
Air pressure | 0.30 MPa |
Coverage | 300% |
Arc height | 0.518 mmA |
Symbol | Ra (µm) | Rz (µm) |
---|---|---|
Non-SP | 0.194 | 1.368 |
SP | 0.470 | 2.633 |
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Tsuji, T.; Fujino, M.; Takahashi, K. Fatigue Limit Improvement and Rendering Surface Defects Harmless by Shot Peening for Carburized Steel. Metals 2023, 13, 42. https://doi.org/10.3390/met13010042
Tsuji T, Fujino M, Takahashi K. Fatigue Limit Improvement and Rendering Surface Defects Harmless by Shot Peening for Carburized Steel. Metals. 2023; 13(1):42. https://doi.org/10.3390/met13010042
Chicago/Turabian StyleTsuji, Toshiya, Masashi Fujino, and Koji Takahashi. 2023. "Fatigue Limit Improvement and Rendering Surface Defects Harmless by Shot Peening for Carburized Steel" Metals 13, no. 1: 42. https://doi.org/10.3390/met13010042
APA StyleTsuji, T., Fujino, M., & Takahashi, K. (2023). Fatigue Limit Improvement and Rendering Surface Defects Harmless by Shot Peening for Carburized Steel. Metals, 13(1), 42. https://doi.org/10.3390/met13010042