Experimental Research on the Low-Cycle Fatigue Crack Growth Rate for a Stiffened Plate of EH36 Steel for Use in Ship Structures
Abstract
:1. Introduction
2. Low Cycle Fatigue Crack Growth Experiment for Stiffened Plate
3. Result and Discussion
3.1. Experimental Results of Stiffened Plates with Single-Edge Crack
3.2. Experimental Results of Stiffened Plates with Central Crack
4. Conclusions
- (1)
- The fatigue crack growth life exhibits a strong correlation with CTOD, particularly under varying load levels. Equation (1) accurately defines the correlation between CTOD and the crack growth rate of EH-36 steel. This highlights the role of CTOD in describing the crack propagation characteristics of EH-36 steel subjected to low-cycle fatigue loading.
- (2)
- The presence of stiffeners imposes a significant constraint effect on the formation of cracks in the plate, leading to a notably smaller ΔCTOD for the stiffened plate specimen compared to the plain plate specimen, consequently reducing the crack propagation rate and increasing the low-cycle fatigue crack growth life.
- (3)
- The constraining effect of the stiffened plate on the crack is influenced by the crack tip position. When the crack tip is far from the stiffener, the ΔCTOD of the stiffened plate specimen continues to increase, indicating a minor constraining effect of the stiffener on the crack in the plain plate. As the crack tip moves closer to the stiffener, the constraining effect of the stiffener on the crack in the plain plate becomes significant. In the case of the specimen with a single-edged crack, ΔCTOD does not increase but decreases, and for the specimen with a center crack, ΔCTOD gradually approaches that of the plain plate specimen.
- (4)
- Further investigations are needed to explore the variation in the CTOD and crack growth rate under variable amplitude loading.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Elastic Modulus/GPa | Poisson’s Ratio | Yield Stress/MPa | Ultimate Tensile Strength/MPa |
---|---|---|---|
206 | 0.3 | 434.94 | 548.91 |
Specimen Number | Pmax/kN | R = Pmin/Pmax | Nominal Stress/MPa | Crack Location | Stiffener Height |
---|---|---|---|---|---|
P1 | 84.24 | −1 | 120 | single-edge crack | 30 mm |
P2 | 90.72 | −1 | 130 | single-edge crack | 30 mm |
P3 | 97.20 | −1 | 140 | single-edge crack | 30 mm |
P4 | 384.00 | 0.031 | 280 | central crack | 30 mm |
P5 | 420.00 | 0.2 | 300 | central crack | 30 mm |
P6 | 420.00 | 0.2 | 300 | central crack | 0 mm |
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Dong, Q.; Xu, G.; Chen, W. Experimental Research on the Low-Cycle Fatigue Crack Growth Rate for a Stiffened Plate of EH36 Steel for Use in Ship Structures. J. Mar. Sci. Eng. 2024, 12, 1365. https://doi.org/10.3390/jmse12081365
Dong Q, Xu G, Chen W. Experimental Research on the Low-Cycle Fatigue Crack Growth Rate for a Stiffened Plate of EH36 Steel for Use in Ship Structures. Journal of Marine Science and Engineering. 2024; 12(8):1365. https://doi.org/10.3390/jmse12081365
Chicago/Turabian StyleDong, Qin, Geng Xu, and Wei Chen. 2024. "Experimental Research on the Low-Cycle Fatigue Crack Growth Rate for a Stiffened Plate of EH36 Steel for Use in Ship Structures" Journal of Marine Science and Engineering 12, no. 8: 1365. https://doi.org/10.3390/jmse12081365
APA StyleDong, Q., Xu, G., & Chen, W. (2024). Experimental Research on the Low-Cycle Fatigue Crack Growth Rate for a Stiffened Plate of EH36 Steel for Use in Ship Structures. Journal of Marine Science and Engineering, 12(8), 1365. https://doi.org/10.3390/jmse12081365