Effect of Temperature and Dwell Time on Fatigue Crack Growth Behavior of CP-Ti
Abstract
:1. Introduction
2. Experiment Details
3. Results and Discussion
3.1. Temperature Sensitivity of CP-Ti under Pure Fatigue and Dwell FCG
3.2. Effect of Temperature and Oxidation on the FCG Behavior of CP-Ti
3.3. Effect of Dwell Time on the FCG Behavior of CP-Ti
3.4. SEM Observation of the Fracture Surface
4. Conclusions
- (1)
- Considering the temperature sensitivity of pure fatigue and dwell fatigue crack growth behavior of CP-Ti, the overall FCG rate increased with temperature under low load ratio. Under high load ratio, the FCG rate of CP-Ti was much higher than under low load ratio.
- (2)
- The da/dN–ΔK/E FCG curves of CP-Ti had a tendency to approach each other under different load ratios, which indicated that E-modulus is an important reason for the difference of FCG behavior. The oxidation resistance of CP-Ti obviously weakened with temperature increase. Besides, the overall oxidation effect on the crack tip and the grain boundary was higher than the oxidation-induced crack closure effect, which led to the FCG rate increase at different temperatures under different load ratios.
- (3)
- The dwell fatigue crack growth rate was higher than that of pure fatigue under low load ratio, and the creep deformation mechanism of CP-Ti played a major role in the dwell fatigue crack growth behavior from room temperature to 300 °C. Under high load ratio, the effect of dwell time on the FCG rate was most significant at 200 °C. However, the dwell FCG rate of CP-Ti at 300 °C was almost close to that of pure fatigue due to creep saturation and oxidation-induced crack closure.
- (4)
- For the pure fatigue condition under low load ratio, there was no difference in the fracture surface morphology, which means that the fatigue fracture mode has typical linear elastic fracture characteristics. Besides, there were many secondary cracks, and the length or depth of some secondary cracks increased with the temperature. Under high load ratio, the secondary cracks and fatigue striations were more obvious with the increase of temperature and dwell time, as the load ratio increased. The effect of the creep on the FCG was also enhanced. Besides, plastic deformation became more pronounced in the final stage.
Author Contributions
Funding
Conflicts of Interest
References
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Fe | C | N | H | O | Ti |
---|---|---|---|---|---|
0.08 | 0.01 | 0.02 | 0.001 | 0.01 | Other |
Temperature (°C) | E-Modulus (MPa) | Yield Strength (MPa) | Ultimate Strength (MPa) | Elongation (%) |
---|---|---|---|---|
RT | 104,000 | 303.2 | 413.4 | 23.6 |
100 | 96,250 | 258.4 | 351.5 | 22.5 |
200 | 92,000 | 175.3 | 248.1 | 38.8 |
300 | 89,000 | 105.9 | 185.9 | 35.3 |
Specimen No. | Load Ratio | Temperature (°C) | Dwell Time (s) |
---|---|---|---|
001 | Low (0.1) | RT | 0 |
002 | - | - | 10 |
003 | - | 100 | 0 |
004 | - | - | 10 |
005 | - | 200 | 0 |
006 | - | - | 10 |
007 | - | 300 | 0 |
008 | - | - | 10 |
009 | High (0.5) | RT | 0 |
010 | - | - | 10 |
011 | - | 100 | 0 |
012 | - | - | 10 |
013 | - | 200 | 0 |
014 | - | - | 10 |
015 | - | 300 | 0 |
016 | - | - | 10 |
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Su, C.-Y.; Zhou, C.-Y.; Lu, L.; Li, J.; Sun, P.-Y.; He, X.-H. Effect of Temperature and Dwell Time on Fatigue Crack Growth Behavior of CP-Ti. Metals 2018, 8, 1031. https://doi.org/10.3390/met8121031
Su C-Y, Zhou C-Y, Lu L, Li J, Sun P-Y, He X-H. Effect of Temperature and Dwell Time on Fatigue Crack Growth Behavior of CP-Ti. Metals. 2018; 8(12):1031. https://doi.org/10.3390/met8121031
Chicago/Turabian StyleSu, Chuan-Yi, Chang-Yu Zhou, Lei Lu, Jian Li, Peng-Yan Sun, and Xiao-Hua He. 2018. "Effect of Temperature and Dwell Time on Fatigue Crack Growth Behavior of CP-Ti" Metals 8, no. 12: 1031. https://doi.org/10.3390/met8121031
APA StyleSu, C. -Y., Zhou, C. -Y., Lu, L., Li, J., Sun, P. -Y., & He, X. -H. (2018). Effect of Temperature and Dwell Time on Fatigue Crack Growth Behavior of CP-Ti. Metals, 8(12), 1031. https://doi.org/10.3390/met8121031