Research on Structural Collapse of a Containership under Combined Bending–Torsion by Oblique Waves
Abstract
:1. Introduction
1.1. Background of This Paper
1.2. Research on the Collapsed Response of Ship Structure under Bending and Torsional Moments
1.3. Hydroelastic Response of a Ship’s Structure in Oblique Waves
1.4. Hydroelasto-Plasticity Research of Ships in Large Waves
1.5. Objective of This Paper
2. Numerical Methodology
2.1. Computational Fluid Dynamics
2.2. Nonlinear FEM
2.3. Two-Way FSI Coupling CFD and Nonlinear FEM
3. Numerical Modeling of Containership
3.1. Description of a 4600 TEU Containership and Wave Cases
3.2. CFD Model of 4600 TEU Containership
3.3. Nonlinear FEM Model of 4600 TEU Containership
4. Time-Domain Hydroelasto-Plastic Response Analyses
4.1. Time-Domain Bending Angle and Torsional Angle
4.2. Time-Domain Stress History
4.3. Time-Domain History of VBM and Torsional Moment
4.4. Analysis of Collapsed Course of Typical Oblique Waves
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Main Dimensions | Values |
---|---|
Overall length | 260 m |
Length between perpendiculars | 245 m |
Molded breadth | 38 m |
Molded depth | 19.6 m |
Designed draft | 11 m |
Displacement | 64,650 t |
Case | Wavelength (m) | Wave Height (m) | Heading Angle (°) | Wavelength/Ship Length | Wave Steepness |
---|---|---|---|---|---|
H1 | 245 | 5 | 180 | 1 | 0.0204 |
H2 | 245 | 9 | 180 | 1 | 0.0367 |
H3 | 245 | 16 | 180 | 1 | 0.0653 |
A1-1 | 245 | 5 | 150° | 1 | 0.0204 |
A1-2 | 245 | 9 | 150° | 1 | 0.0367 |
A1-3 | 245 | 16 | 150° | 1 | 0.0653 |
A2-1 | 245 | 5 | 135° | 1 | 0.0204 |
A2-2 | 245 | 9 | 135° | 1 | 0.0367 |
A2-3 | 245 | 16 | 135° | 1 | 0.0653 |
A3-3 | 245 | 16 | 120° | 1 | 0.0653 |
Grid Case | Grid Number | Errors |
---|---|---|
Case A (Fine grid) | 11446884 | 1.11% |
Case B (Medium grid) | 6555065 | 2.12% |
Case C (Coarse grid) | 2512584 | 10.11% |
Density (t/m3) | Elastic Modulus (MPa) | Poisson’s Ratio | Yield Strength |
---|---|---|---|
7850 | 2.06 × 105 | 0.33 | 235 |
Bending deformation (t = 12.8 s) | Torsional deformation (t = 12.8 s) | CFD model (t = 12.8 s) |
Bending deformation (t = 20.2 s) | Torsional deformation (t = 20.2 s) | CFD model (t = 20.2 s) |
Bending deformation (t = 25 s) | Torsional deformation (t = 25 s) | CFD model (t = 25 s) |
Bending deformation (t = 31.8 s) | Torsional deformation (t = 31.8 s) | CFD model (t = 31.8 s) |
Bending deformation (t = 37.8 s) | Torsional deformation (t = 37.8 s) | CFD model (t = 37.8 s) |
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Liu, W.; Zou, Q.; Zhang, Y.; Nie, Y.; Song, X. Research on Structural Collapse of a Containership under Combined Bending–Torsion by Oblique Waves. J. Mar. Sci. Eng. 2024, 12, 444. https://doi.org/10.3390/jmse12030444
Liu W, Zou Q, Zhang Y, Nie Y, Song X. Research on Structural Collapse of a Containership under Combined Bending–Torsion by Oblique Waves. Journal of Marine Science and Engineering. 2024; 12(3):444. https://doi.org/10.3390/jmse12030444
Chicago/Turabian StyleLiu, Weiqin, Qilu Zou, Yaqiang Zhang, Yong Nie, and Xuemin Song. 2024. "Research on Structural Collapse of a Containership under Combined Bending–Torsion by Oblique Waves" Journal of Marine Science and Engineering 12, no. 3: 444. https://doi.org/10.3390/jmse12030444
APA StyleLiu, W., Zou, Q., Zhang, Y., Nie, Y., & Song, X. (2024). Research on Structural Collapse of a Containership under Combined Bending–Torsion by Oblique Waves. Journal of Marine Science and Engineering, 12(3), 444. https://doi.org/10.3390/jmse12030444