Submitted:
09 July 2026
Posted:
10 July 2026
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Reduced Physical Description of the Swell Packet
2.2. Bulk Energy Equation
2.3. Deep-Water Dispersion and Travel-Time Scale
2.4. Wave Steepness and Whitecapping Threshold
2.5. Steepness-Limited Saturation Height
2.6. Post-Saturation Decay and Effective Attenuation Length
2.7. Reduced Closure in Terms of Characteristic Rates
2.8. Computational Implementation and Reproducibility
3. Results
3.1. Physically Constrained Amplitude Envelope
3.2. Internal Consistency of Steepness and Saturation
3.3. Sensitivity of Saturation Height to
3.4. Sensitivity of Arrival Height to Attenuation Length
3.5. Testing the Saturation Envelope with Graciosa Buoy Observations
4. Discussion
4.1. Physical Robustness of the Envelope
4.2. Implications for Island Hazard Warning
4.3. Operational Interpretation
4.4. Limitations
4.5. Outlook
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations and Symbols
| Significant wave height | |
| Steepness-limited saturation significant wave height | |
| Offshore arrival significant wave height | |
| Peak wave period | |
| Deep-water wavenumber | |
| Intrinsic radian frequency | |
| Phase velocity | |
| Group velocity | |
| Bulk wave-energy density | |
| Wave-height convention constant in the bulk energy expression | |
| Water density | |
| Gravitational acceleration | |
| Bulk wave steepness, | |
| Threshold bulk steepness for efficient whitecapping | |
| Effective attenuation length | |
| Propagation distance | |
| Distance along the propagation path | |
| Arrival time or propagation time to the island | |
| Effective wind-energy input into the dominant swell component | |
| Whitecapping and active-breaking dissipation | |
| Propagation-related losses | |
| Effective wind-input growth rate | |
| Whitecapping decay rate | |
| Propagation/spreading decay rate | |
| Wave-action density | |
| Total source/sink term in the spectral wave-action balance | |
| Wind-input source term | |
| Nonlinear wave–wave interaction source term | |
| Dissipation source term | |
| Ratio measuring proximity to the steepness-limited saturation ceiling | |
| SAR | Synthetic Aperture Radar |
| SWAN | Simulating WAves Nearshore model |
| SWOT | Surface Water and Ocean Topography mission |
| CFOSAT | China–France Oceanography SATellite |
| SWIM | Surface Waves Investigation and Monitoring instrument on CFOSAT |
| ERA5 | Fifth-generation ECMWF atmospheric reanalysis |
| ERDDAP | Environmental Research Division’s Data Access Program |
| WAVEWATCH III | Third-generation spectral wave model |
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| TP (s) | for | for | for |
|---|---|---|---|
| 12 | 3.58 m | 4.29 m | 5.01 m |
| 14 | 4.87 m | 5.84 m | 6.82 m |
| 16 | 6.36 m | 7.63 m | 8.91 m |
| Le (km) | |
|---|---|
| 3000 | 2.27 m |
| 5000 | 3.32 m |
| 7500 | 4.01 m |
| 10000 | 4.40 m |
| 20000 | 5.07 m |
| Peak time UTC |
(m) |
(s) | Direction (°) |
, (m) |
||
|---|---|---|---|---|---|---|
| 2026-01-26 23:08 | 5.98 | 15.4 | 352 | 0.0507 | 7.07 | 0.85 |
| 2026-01-23 12:08 | 5.62 | 15.4 | 82 | 0.0477 | 7.07 | 0.79 |
| 2026-01-27 19:08 | 5.52 | 15.4 | 138 | 0.0468 | 7.07 | 0.78 |
| 2026-04-06 22:17 | 5.48 | 15.4 | 39 | 0.0465 | 7.07 | 0.77 |
| 2026-03-19 21:17 | 5.46 | 12.5 | 345 | 0.0703 | 4.66 | 1.17 |
| 2026-01-27 15:08 | 5.37 | 14.3 | 97 | 0.0528 | 6.10 | 0.88 |
| 2026-04-23 02:17 | 5.15 | 12.5 | 110 | 0.0663 | 4.66 | 1.11 |
| 2026-01-02 10:08 | 5.03 | 12.5 | 45 | 0.0648 | 4.66 | 1.08 |
| 2026-02-02 12:08 | 4.73 | 13.3 | 48 | 0.0538 | 5.27 | 0.90 |
| 2026-01-29 08:08 | 4.68 | 15.4 | 352 | 0.0397 | 7.07 | 0.66 |
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