Experimental Research on the Stiffness Step between the Main Hull and Superstructure of Cruise Ships
Abstract
:1. Introduction
2. Experimental Details
2.1. Description of the Model
2.2. Experimental Setup
2.3. Experimental Results
2.3.1. Experiment Results of M1
2.3.2. Experiment Results of M2 and M3
2.3.3. Experiment Results of M4 and M5
3. Analysis and Discussion
3.1. Longitudinal Stress Distribution Characteristics
3.2. Bending Efficiency of Superstructures
3.3. Maximum Longitudinal Stress and Deformation
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Symbol | Description |
σ | Longitudinal stress |
M | Bending moment of cross-section |
Iy | Moment of inertia on the neutral axis |
z | Distance from the calculation position to the neutral axis |
CL | Geometric similarity ratio between the prototype and the model |
Ct | Thickness similarity ratio between the prototype and the model |
CI | Ratio of moments of inertia between the prototype and the model |
Ce | Height similarity ratio of the neutral axis between the prototype and the model |
Ms | Moment of inertia of the prototype |
Mm | Moment of inertia of the model |
Hs | Height of neutral axis of the prototype |
Hm | Height of neutral axis of the model |
v | Bending efficiency of the superstructure |
σsv | Actual longitudinal stress |
σs | Longitudinal stress when the superstructure fully participates in the longitudinal bending |
Appendix A
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Width (mm) | Height of Main Hull (mm) | Height of Deck (mm) | |
---|---|---|---|
Model | 2720 | 1410 | 250 |
Parameter | Model |
---|---|
Height of neutral axis (mm) | 697.507 |
Moment of inertia (mm2·mm2) | 5.43 × 1010 |
Components | Dimension(mm) |
---|---|
Bottom plate | 6 |
Inner bottom plate | 6 |
Bottom girder | 5 |
Bottom longitudinal | −36 × 5 |
Inner longitudinal | −36 × 5 |
Side longitudinal | −25 × 6 |
Side plate | 4 |
Deck plate | 2 |
Deck longitudinal | −12 × 5 |
Parameter | Symbol | Value |
---|---|---|
Moment of inertia of prototype (mm2·mm2) | Ms | 3.79 × 1014 |
Moment of inertia after being scaled (mm2·mm2) | Ms/CI | 5.48 × 1010 |
Moment of inertia of model (mm2·mm2) | Mm | 5.43 × 1010 |
Error of the moment of inertia (%) | - | 0.887 |
Height of neutral axis of prototype (mm) | Hs | 8408.6 |
Height of neutral axis after being scaled (mm) | Hs/Ce | 700.7 |
Height of neutral axis of model (mm) | Hm | 697.5 |
Error of the height of neutral axis (%) | - | 0.458 |
Order | Load (t) |
---|---|
1 | 4 |
2 | 8 |
3 | 12 |
4 | 16 |
5 | 20 |
6 | 24 |
7 | 28 |
8 | 32 |
9 | 36 |
10 | 40 |
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Pei, Z.; Yang, B.; Liu, G.; Wu, W. Experimental Research on the Stiffness Step between the Main Hull and Superstructure of Cruise Ships. J. Mar. Sci. Eng. 2023, 11, 1264. https://doi.org/10.3390/jmse11071264
Pei Z, Yang B, Liu G, Wu W. Experimental Research on the Stiffness Step between the Main Hull and Superstructure of Cruise Ships. Journal of Marine Science and Engineering. 2023; 11(7):1264. https://doi.org/10.3390/jmse11071264
Chicago/Turabian StylePei, Zhiyong, Bin Yang, Guangwu Liu, and Weiguo Wu. 2023. "Experimental Research on the Stiffness Step between the Main Hull and Superstructure of Cruise Ships" Journal of Marine Science and Engineering 11, no. 7: 1264. https://doi.org/10.3390/jmse11071264
APA StylePei, Z., Yang, B., Liu, G., & Wu, W. (2023). Experimental Research on the Stiffness Step between the Main Hull and Superstructure of Cruise Ships. Journal of Marine Science and Engineering, 11(7), 1264. https://doi.org/10.3390/jmse11071264