Ocean Surface Gravity Wave Evolution during Three Along-Shelf Propagating Tropical Cyclones: Model’s Performance of Wind-Sea and Swell

Author:

Hsu Chu-En1ORCID,Hegermiller Christie A.23ORCID,Warner John C.2,Olabarrieta Maitane1

Affiliation:

1. Department of Civil and Coastal Engineering, University of Florida, Gainesville, FL 32611, USA

2. U.S. Geological Survey, Woods Hole Coastal and Marine Science Center, Woods Hole, MA 02543, USA

3. Sofar Ocean Technologies, San Francisco, CA 94105, USA

Abstract

Despite recent advancements in ocean–wave observations, how a tropical cyclone’s (TC’s) track, intensity, and translation speed affect the directional wave spectra evolution is poorly understood. Given the scarcity of available wave spectral observations during TCs, there are few studies about the performance of spectral wave models, such as Simulating Waves Nearshore (SWAN), under various TC scenarios. We combined the National Data Buoy Center observations and numerical model hindcasts to determine the linkages between wave spectrum evolution and TC characteristics during hurricanes Matthew 2016, Dorian 2019, and Isaias 2020. Five phases were identified in the wave spectrogram based on the normalized distance to the TC, the sea–swell separation frequency, and the peak wave frequency, indicating how the wave evolution relates to TC characteristics. The wave spectral structure and SWAN model’s performance for wave energy distribution within different phases were identified. The TC intensity and its normalized distance to a buoy were the dominant factors in the energy levels and peak wave frequencies. The TC heading direction and translation speed were more likely to impact the durations of the phases. TC translation speeds also influenced the model’s performance on swell energy. The knowledge gained in this work paves the way for improving model’s performance during severe weather events.

Funder

National Oceanographic Partnership Program

USACE Enhancing Engineering with Nature project

NSF Career Award

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference44 articles.

1. Empirical parameterization of setup, swash, and runup;Stockdon;Coast. Eng.,2006

2. Total water levels along the South Atlantic Bight during three along–shelf propagating tropical cyclones: Relative contributions of storm surge and wave runup;Hsu;Nat. Hazards Earth Syst. Sci. Discuss (Prepr. Rev.),2023

3. National Oceanic and Atmospheric Administration (2023, May 23). National Coastal Population Report: Population Trends from 1970 to 2010. NOAA State of the Coast Report Series, Available online: https://coast.noaa.gov/digitalcoast/training/population-report.html.

4. Masson Delmotte, V., Zhai, P., Pirani, A., Connors, S.L., Péan, C., Berger, S., Caud, N., Chen, Y., Goldfarb, L., and Gomis, M.I. (2023, May 23). Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Available online: https://www.ipcc.ch/report/ar6/wg1/.

5. Directional spectra of hurricane wind waves;Young;J. Geophys. Res. Ocean.,2006

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