Wave Force Characteristics and Stability of Detached Breakwaters Consisting of Open Cell Caissons Interlocked via Crushed Stones
Abstract
:1. Introduction
2. Experimental Setup and Analysis Methods
2.1. Experimental Setup
2.1.1. Wave Basin and Model Setup
2.1.2. Breakwater Model
2.1.3. Test Waves
2.2. Analysis Method
2.2.1. Data Acquisition and Analysis
2.2.2. Wave Force Calculation
2.2.3. Analytical Solution for Wave Forces
3. Results and Discussion
3.1. Maximum Wave Force Per Unit Length
3.2. Wave Force Acting on the Entire Breakwater
3.3. Stability Against Sliding
4. Conclusions
- The wave force acting on the open cell caisson breakwater decreased as the relative length of the breakwater and incident wave angle increased. The reduced force ratio was 0.210 when the relative length of the breakwater () was 0.887. These results demonstrate the effectiveness of the force reduction of open cell caisson breakwaters. In some cases, the relative wave force exceeded 1.0 due to diffraction, and the analytical solution predicted this phenomenon well. Moreover, the diffraction effects were considerable for the conventional caisson breakwater but negligible for the long-detached breakwater () involving open cell caissons.
- When the incident wave was obliquely propagated along the long structure, the acting wave force was reduced, owing to the phase difference of the wave pressures. The open cell caisson breakwater was more stable than the conventional one for oblique and normal incident waves. Specifically, at an incident wave angle of 0° (normal incidence), the open cell caisson breakwater could withstand a relative wave force 35% higher than that tolerated by the conventional caisson breakwater, owing to the frictional resistance force induced by the crushed stones in two open cells facing each other.
- The structures based on open cell caissons could experience excessive deformations before the sliding failure occurred. To prevent this, the deformation of the crushed stones filled in the open cells should be controlled by compacting the crushed stones or by using low-flow mortar to reduce the void.
Author Contributions
Funding
Conflicts of Interest
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Sample | D10 (= De, mm) | D30 (mm) | D50 (mm) | D60 (mm) | Cu | Cc | USCS |
---|---|---|---|---|---|---|---|
A | 10.359 | 13.383 | 16.408 | 17.920 | 1.730 | 0.965 | GP |
B | 5.313 | 6.600 | 7.886 | 8.529 | 1.605 | 0.961 | GP |
C | 2.308 | 2.972 | 3.636 | 3.969 | 1.720 | 0.946 | SP |
H (m) | 0.160 | 0.176 | 0.192 | 0.208 | 0.224 | |
---|---|---|---|---|---|---|
T (s) | ||||||
1.50 | W01 (0.0566) | W02 (0.0623) | ||||
1.75 | W03 (0.0464) | W04 (0.0510) | W05 (0.0557) | |||
2.00 | W06 (0.0395) | W07 (0.0434) | W08 (0.0473) | W09 (0.0513) | W10 (0.0552) | |
2.25 | W11 (0.0344) | W12 (0.0378) | W13 (0.0413) | W14 (0.0447) | W15 (0.0482) | |
2.50 | W16 (0.0306) | W17 (0.0336) | W18 (0.0367) | W19 (0.0397) | W20 (0.0428) |
Case | Conventional Caisson | Open Cell Caisson | ||
---|---|---|---|---|
Head | Trunk | Head (Crushed Stones) | Trunk (Crushed Stones) | |
Self-weight (kN) | 1.80 | 1.20 | 1.89 (0.18) | 0.96 (0.37) |
Effective self-weight (kN) | 1.19 | 0.57 | 1.19 (0.12) | 0.57 (0.25) |
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Lee, B.W.; Jung, J.-S.; Park, W.-S.; Yoon, J.-S. Wave Force Characteristics and Stability of Detached Breakwaters Consisting of Open Cell Caissons Interlocked via Crushed Stones. Water 2020, 12, 2873. https://doi.org/10.3390/w12102873
Lee BW, Jung J-S, Park W-S, Yoon J-S. Wave Force Characteristics and Stability of Detached Breakwaters Consisting of Open Cell Caissons Interlocked via Crushed Stones. Water. 2020; 12(10):2873. https://doi.org/10.3390/w12102873
Chicago/Turabian StyleLee, Byeong Wook, Jae-Sang Jung, Woo-Sun Park, and Jae-Seon Yoon. 2020. "Wave Force Characteristics and Stability of Detached Breakwaters Consisting of Open Cell Caissons Interlocked via Crushed Stones" Water 12, no. 10: 2873. https://doi.org/10.3390/w12102873
APA StyleLee, B. W., Jung, J.-S., Park, W.-S., & Yoon, J.-S. (2020). Wave Force Characteristics and Stability of Detached Breakwaters Consisting of Open Cell Caissons Interlocked via Crushed Stones. Water, 12(10), 2873. https://doi.org/10.3390/w12102873