A. S. Zapevalov
Marine Hydrophysical Institute of RAS, Sevastopol, Russia
e-mail: sevzepter@mail.ru
Abstract
In many practical applications, a statistical description of waves is needed to calculate and predict their impact on ships, coastal structures and beaches. This paper investigates the statistics of the trough Th and the crest Cr of sea surface waves in the coastal zone of the Black Sea. The analysis uses data from direct wave measurements obtained on a stationary oceanographic platform of the Marine Hydrophysical Institute of the Russian Academy of Sciences. In all situations, the mode of the Th and Cr distributions is shifted to the region of higher values relative to the Rayleigh distribution mode. As a rule, the analysis of the distributions of trough and crest is carried out within a second-order nonlinear model based on the Stokes wave. It is shown that within the framework of this model it is possible to describe only the average distribution over an ensemble of situations, while for practical tasks it is necessary to know the deviations from these values. The type of Th and Cr distributions significantly depends on the skewness of the distribution of sea surface elevations Аη. With Аη < 0, the probability density function Th and Cr are almost identical. The second-order nonlinear model, in which the condition Аη > 0 is always fulfilled, does not describe this situation. The probability density functions Th and Cr obtained with Аη > 0 correspond qualitatively to this model. Changes in the excess kurtosis of the distribution of sea surface elevations have a lesser effect on the probability density functions Th and Cr.
Keywords
sea surface, waves, trough, crest, statistical distributions, Black Sea
Acknowledgments
The work was completed under state assignment on topic FNNN-2021-0004 “Fundamental studies of the processes that determine fluxes of matter and energy in the marine environment and at its boundaries, the state and evolution of the physical and biogeochemical structure of marine systems in modern conditions” (“Oceanological processes” code). The author thanks A.V. Garmashov, who provided wave measurement data on a stationary oceanographic platform.
For citation
Zapevalov, A.S., 2024. Statistical Distributions of Crests and Trough of Sea Surface Waves. Ecological Safety of Coastal and Shelf Zones of Sea, (3), pp. 49–58.
References
- Slunyaev, A.V., Kokorina, A.V., Zaytsev, A.I., Didenkulova, E.G., Moskvitin, A.A., Didenkulov, O.I. and Pelinovsky, E.N., 2023. The Dependence of Wave Height Probability Distributions on Physical Parameters from Measurements near Sakhalin Island. Fundamental and Applied Hydrophysics, 16(3), pp. 18–29. https://doi.org/10.59887/2073-6673.2023.16(3)-2 (in Russian).
- Longuet-Higgins, M.S., 1952. On the Statistical Distribution of the Heights of Sea Waves. Journal of Marine Research, 11(3). Available at: https://elischolar.library.yale.edu/ journal_of_marine_research/774 [Accessed: 25 July 2024].
- Naess, A., 1985. On the Distribution of Crest to Trough Wave Heights. Ocean Engineering, 12(3), pp. 221–234. https://doi.org/10.1016/0029-8018(85)90014-9
- Gemmrich, J. and Thomson, J., 2017. Observations of the Shape and Group Dynamics of Rogue Waves. Geophysical Research Letters, 44(4), pp. 1823–1830. https://doi.org/10.1002/2016GL072398
- Dysthe, K., Krogstad, H.E. and Muller, P., 2008. Oceanic Rogue Waves. Annual Review of Fluid Mechanics, 40, pp. 287–310. https://doi.org/10.1146/annurev.fluid.40.111406.102203
- Forristall, G.Z., 2000. Wave Crest Distributions: Observations and SecondOrder Theory. Journal of Physical Oceanography, 30(8), pp. 1931–1943. https://doi.org/10.1175/1520-0485(2000)030%3C1931:WCDOAS%3E2.0.CO;2
- Nieto-Reyes, A., 2022. On the Non-Gaussianity of Sea Surface Elevations. Journal of Marine Science and Engineering, 10(9), 1303. https://doi.org/10.3390/jmse10091303
- Tayfun, M.A., 1980. Narrow-Band Nonlinear Sea Waves. Journal of Geophysical Research, 85(C3), pp. 1548–1552. https://doi.org/10.1029/JC085iC03p01548
- Toffoli, A., Bitner-Gregersen, E., Onorato, M. and Babanin, A.V., 2008. Wave Crest and Trough Distributions in a Broad-Banded Directional Wave Field. Ocean Engineering, 35(17), pp. 1784–1792. https://doi.org/10.1016/j.oceaneng.2008.08.010
- Longuet-Higgins, M.S, 1963. The Effect of Nonlinearities on Statistical Distributions in the Theory of Sea Waves. Journal of Fluid Mechanics, 17(4), pp. 459–480. https://doi.org/10.1017/S0022112063001452
- Guedes Soares, C., Cherneva, Z. and Antão, E.M., 2004. Steepness and Asymmetry of the Largest Waves in Storm Sea States. Ocean Engineering, 31(8–9), pp. 1147–1167. https://doi.org/10.1016/j.oceaneng.2003.10.014
- Zapevalov, A.S. and Garmashov, A.V., 2022. The Appearance of Negative Values of the Skewness of Sea-Surface Waves. Izvestiya, Atmospheric and Oceanic Physics, 58(3), pp. 263–269. https://doi.org/10.1134/S0001433822030136
- Zapevalov, A.S. and Garmashov, A.V., 2021. Skewness and Kurtosis of the Surface Wave in the Coastal Zone of the Black Sea. Physical Oceanography, 28(4), pp. 414–425. doi:10.22449/1573-160X-2021-4-414-425
- Glejin, J., Sanil Kumar, V., Nair, T.B., Singh, J. and Nherakkol, A., 2014. Freak Waves off Ratnagiri, West Coast of India. Indian Journal of Geo-Marine Sciences, 43(7), pp. 1339–1342.
- Didenkulova, I. and Anderson, C., 2010. Freak Waves of Different Types in the Coastal Zone of the Baltic Sea. Natural Hazards and Earth System Sciences, 10(9), pp. 2021–2029. https://doi.org/10.5194/nhess-10-2021-2010
- Zapevalov, A.S. and Garmashov, A.V., 2024. Ratio between Trough and Crest of Surface Waves in the Coastal Zone of the Black Sea. Physical Oceanography, 31(1), pp. 71–78.
- Zapevalov, A.S., Bol'shakov, A.N. and Smolov, V.E., 2009. Studying the Sea Surface Slopes Using an Array of Wave Gauge Sensors. Oceanology, 49(1), pp. 31–38. https://doi.org/10.1134/S0001437009010044
- Toloknov, Yu.N. and Korovushkin, A.I., 2010. Hydrometeorological Information Collection System. Monitoring Systems of Environment, 13, pp. 50–53 (in Russian).
- Toffoli, A., Onorato, M., Babanin, A.V., Bitner-Gregersen, E., Osborne, A.R. and Monbaliu, J., 2007. Second-Order Theory and Setup in Surface Gravity Waves: A Comparison with Experimental Data. Journal of Physical Oceanography, 37(11), pp. 2726–2739. https://doi.org/10.1175/2007JPO3634.1
- Tayfun, M.A. and Alkhalidi, M.A., 2016. Distribution of Surface Elevations in Nonlinear Seas. In: OTC, 2016. Proceedings of Offshore Technology Conference. Kuala Lumpur, Malaysia, 22–25 March 2016. pp. 1274–1287. https://doi.org/10.4043/26436-MS
- Forristall, G.Z., 2000. Wave Crest Distributions: Observations and Second-Order Theory. Journal of Physical Oceanography, 30(8), pp. 1931–1943. https://doi.org/10.1175/15200485(2000)030%3C1931:WCDOAS%3E2.0.CO;2
- Prevosto, M. and Forristall, G.Z., 2004. Statistics of Wave Crests from Models vs. Measurements. Journal of Offshore Mechanics and Arctic Engineering, 126(1), pp. 43–50. https://doi.org/10.1115/1.1641795