Precipitate Evolution and Fatigue Crack Growth in Creep and Artificially Aged Aluminum Alloy
Abstract
:1. Introduction
2. Material and Experiments
3. Results and Discussion
3.1. Microstructure
3.2. Conventional Mechanical Properties
3.3. Fatigue Crack Growth Behavior
4. Conclusions
- (1)
- Creep age forming generated a large quantity of dislocations in the grains of AA2524, which provided nucleation locations for the heterogeneous nucleation of the second phase. The resulting precipitates in the creep aged AA2524 were larger in number and size than those in the stress-free aged AA2524 after the same aging time.
- (2)
- The yield strength of AA2524 increased with increasing aging time. After the same aging time, the yield strength of the creep aged alloy was higher, while the hardening curve of the stress-free aged alloy had a plateau region for approximately 5 h. This indicates that creep aging can significantly accelerate the age hardening process, with the alloy quickly reaching the peak aging state.
- (3)
- In the low stress intensity factor region, the crack growth behavior of AA2524 was mainly affected by precipitates. The FCP rate was accelerated with an increased creep aging time. Creep aging promoted the precipitation and growth of S″ and S′ phases in the alloy. The needle-shaped coarse S″(S′) phases altered dislocation slip mode in the alloy, reduced the reversibility of dislocation slips, and degraded the crack propagation resistance. The FCP rate of the creep aged alloy was higher than that of the stress-free aged alloy after the same aging time.
- (4)
- In the stable crack propagation region, the FCP rates were generally consistent under different aging treatments, and the effect of precipitate features in the alloy matrix on crack propagation resistance was negligible.
Author Contributions
Funding
Conflicts of Interest
References
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Liu, C.; Liu, Y.; Ma, L.; Li, S.; Zhao, X.; Wang, Q. Precipitate Evolution and Fatigue Crack Growth in Creep and Artificially Aged Aluminum Alloy. Metals 2018, 8, 1039. https://doi.org/10.3390/met8121039
Liu C, Liu Y, Ma L, Li S, Zhao X, Wang Q. Precipitate Evolution and Fatigue Crack Growth in Creep and Artificially Aged Aluminum Alloy. Metals. 2018; 8(12):1039. https://doi.org/10.3390/met8121039
Chicago/Turabian StyleLiu, Chi, Yilun Liu, Liyong Ma, Songbai Li, Xianqiong Zhao, and Qing Wang. 2018. "Precipitate Evolution and Fatigue Crack Growth in Creep and Artificially Aged Aluminum Alloy" Metals 8, no. 12: 1039. https://doi.org/10.3390/met8121039
APA StyleLiu, C., Liu, Y., Ma, L., Li, S., Zhao, X., & Wang, Q. (2018). Precipitate Evolution and Fatigue Crack Growth in Creep and Artificially Aged Aluminum Alloy. Metals, 8(12), 1039. https://doi.org/10.3390/met8121039