Virtual Level Analysis Applied to Wave Flume Experiments: The Case of Waves-Cubipod Homogeneous Low-Crested Structure Interaction
Abstract
:1. Introduction
- Details of the violent interaction of breaking waves with a Cubipod HLCS, which are critical conditions at which they can be subjected, were investigated.
- We investigated the spatio-temporal evolution of water elevations before and after interaction of the incident waves with the structure following a 2D assumption. This approach can provide useful data for detailed model validations in this type of research.
- With the use of VL measurements, it was possible to track slight variations of Cubipods located above the water free surface, identifying the instants of failure of the top of the structure during the wave interactions.
2. Physical Tests
2.1. Experimental Set Up
2.2. Case Study
3. Image-Based Approaches
3.1. Stage 1: Calibration and Rectification
3.1.1. Image Calibration
3.1.2. Image Rectification
3.2. Image Processing
3.3. Image Analysis
4. Results and Discussion
4.1. Qualitative Analysis of the Experiments
4.2. Water Elevation Analysis
4.3. Identification of Structure Failure
5. Conclusions
- Drastic changes identified in the levels of the Cubipods interfaces (edges) can be useful to investigate failure modes in similar structure configurations.
- The failure of the Cubipods at the crest showed the decreased performance of the structure to reduce the incoming wave elevations.
- The water elevation data that can be obtained with this approach before and after the structure can be useful to perform comparisons with analytical or numerical models.
- Although it is complex to build identical structure models as the one presented in this work, limiting systematic analysis, the present image-based approach can be extended to analyze a wide range of wave flume configurations. In this research, the internal memory of the camera was used. By increasing this memory, the approach can be further used to analyze breakwater behavior in irregular sea.
- The use of color cameras, the application of improved image enhancement methods, and the definition of VLs of different sizes at specific locations could be helpful to identify and monitor the displacement of different interfaces.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A. Virtual Level Definition
Appendix B. Reliability Analysis of the VL Measurements
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Scale | Crown Width (m) | Base Width (m) | Structure Height (m) | Number of Rows of the 5-Layer Cross-Section |
---|---|---|---|---|
1:42.8 | 0.16 | 0.61 | 0.19 | 11 + 9 + 8 + 5 + 3 |
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Escudero, M.; Hernández-Fontes, J.V.; Hernández, I.D.; Mendoza, E. Virtual Level Analysis Applied to Wave Flume Experiments: The Case of Waves-Cubipod Homogeneous Low-Crested Structure Interaction. J. Mar. Sci. Eng. 2021, 9, 230. https://doi.org/10.3390/jmse9020230
Escudero M, Hernández-Fontes JV, Hernández ID, Mendoza E. Virtual Level Analysis Applied to Wave Flume Experiments: The Case of Waves-Cubipod Homogeneous Low-Crested Structure Interaction. Journal of Marine Science and Engineering. 2021; 9(2):230. https://doi.org/10.3390/jmse9020230
Chicago/Turabian StyleEscudero, Mireille, Jassiel V. Hernández-Fontes, Irving D. Hernández, and Edgar Mendoza. 2021. "Virtual Level Analysis Applied to Wave Flume Experiments: The Case of Waves-Cubipod Homogeneous Low-Crested Structure Interaction" Journal of Marine Science and Engineering 9, no. 2: 230. https://doi.org/10.3390/jmse9020230
APA StyleEscudero, M., Hernández-Fontes, J. V., Hernández, I. D., & Mendoza, E. (2021). Virtual Level Analysis Applied to Wave Flume Experiments: The Case of Waves-Cubipod Homogeneous Low-Crested Structure Interaction. Journal of Marine Science and Engineering, 9(2), 230. https://doi.org/10.3390/jmse9020230