Morphodynamic Acceleration Techniques for Multi-Timescale Predictions of Complex Sandy Interventions
Abstract
:1. Introduction
2. Morphodynamic Acceleration Techniques
2.1. Techniques Using Brute Force Time Series
2.1.1. Existing Brute Force Techniques
2.1.2. New Technique: Brute Force Merged
2.2. Techniques Using Representative Wave Conditions
2.2.1. Input Reduction Based on Longshore Sediment Transports
2.2.2. Input Reduction Based on Offshore Wave Climate
2.3. Strengths and Limitations of the Morphodynamic Acceleration Techniques Considered
3. Case Study: The Sand Engine
3.1. Case Description
3.2. Numerical Model Setup for Delfland Coast
3.3. Validation of the Benchmark Simulation without Upscaling (Brute Force)
3.3.1. Morphodynamic Evolution
3.3.2. Volume Changes 2011–2016
4. Application of Acceleration Techniques to the Sand Engine Case
4.1. Methodology for Brute Force Methods
4.2. Methodology for Representative Wave Forcing Techniques
4.2.1. Techniques Based on longshore transports
4.2.2. Technique Based on Offshore Wave Climate
5. Verification of Acceleration Techniques for Short to Medium Term Morphodynamic Evolution
5.1. Morphological Response
5.2. Volume Changes 2011–2016
5.3. Computational Times
6. Comparison Acceleration Techniques for Decadal Forecasts
6.1. Decadal Scale Evolution
6.2. Volume Changes 2011–2040
6.3. Shoreline Positions in 2040
7. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Abbr. | Acceleration Technique | Time (h) | Relative to BF (%) |
---|---|---|---|
BF | Brute Force | 331.4 | 100.0 |
BFF | Brute Force Filtered | 176.6 | 53.3 |
BFFC | Brute Force Filtered Compressed | 56.5 | 17.1 |
BFM | Brute Force Merged | 15.0 | 4.5 |
NLST | Net LST | 3.9 | 1.2 |
GLST | Gross LST | 3.2 | 1.0 |
OWC | Offshore Wave Climate | 5.3 | 1.6 |
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Luijendijk, A.P.; de Schipper, M.A.; Ranasinghe, R. Morphodynamic Acceleration Techniques for Multi-Timescale Predictions of Complex Sandy Interventions. J. Mar. Sci. Eng. 2019, 7, 78. https://doi.org/10.3390/jmse7030078
Luijendijk AP, de Schipper MA, Ranasinghe R. Morphodynamic Acceleration Techniques for Multi-Timescale Predictions of Complex Sandy Interventions. Journal of Marine Science and Engineering. 2019; 7(3):78. https://doi.org/10.3390/jmse7030078
Chicago/Turabian StyleLuijendijk, Arjen P., Matthieu A. de Schipper, and Roshanka Ranasinghe. 2019. "Morphodynamic Acceleration Techniques for Multi-Timescale Predictions of Complex Sandy Interventions" Journal of Marine Science and Engineering 7, no. 3: 78. https://doi.org/10.3390/jmse7030078