Javascript must be enabled to continue!
Wave–Current Interaction between Hurricane Matthew Wave Fields and the Gulf Stream
View through CrossRef
AbstractHurricanes interact with the Gulf Stream in the South Atlantic Bight (SAB) through a wide variety of processes, which are crucial to understand for prediction of open-ocean and coastal hazards during storms. However, it remains unclear how waves are modified by large-scale ocean currents under storm conditions, when waves are aligned with the storm-driven circulation and tightly coupled to the overlying wind field. Hurricane Matthew (2016) impacted the U.S. Southeast coast, causing extensive coastal change due to large waves and elevated water levels. The hurricane traveled on the continental shelf parallel to the SAB coastline, with the right side of the hurricane directly over the Gulf Stream. Using the Coupled Ocean–Atmosphere–Wave–Sediment Transport modeling system, we investigate wave–current interaction between Hurricane Matthew and the Gulf Stream. The model simulates ocean currents and waves over a grid encompassing the U.S. East Coast, with varied coupling of the hydrodynamic and wave components to isolate the effect of the currents on the waves, and the effect of the Gulf Stream relative to storm-driven circulation. The Gulf Stream modifies the direction of the storm-driven currents beneath the right side of the hurricane. Waves transitioned from following currents that result in wave lengthening, through negative current gradients that result in wave steepening and dissipation. Wave–current interaction over the Gulf Stream modified maximum coastal total water levels and changed incident wave directions at the coast by up to 20°, with strong implications for the morphodynamic response and stability of the coast to the hurricane.
American Meteorological Society
Title: Wave–Current Interaction between Hurricane Matthew Wave Fields and the Gulf Stream
Description:
AbstractHurricanes interact with the Gulf Stream in the South Atlantic Bight (SAB) through a wide variety of processes, which are crucial to understand for prediction of open-ocean and coastal hazards during storms.
However, it remains unclear how waves are modified by large-scale ocean currents under storm conditions, when waves are aligned with the storm-driven circulation and tightly coupled to the overlying wind field.
Hurricane Matthew (2016) impacted the U.
S.
Southeast coast, causing extensive coastal change due to large waves and elevated water levels.
The hurricane traveled on the continental shelf parallel to the SAB coastline, with the right side of the hurricane directly over the Gulf Stream.
Using the Coupled Ocean–Atmosphere–Wave–Sediment Transport modeling system, we investigate wave–current interaction between Hurricane Matthew and the Gulf Stream.
The model simulates ocean currents and waves over a grid encompassing the U.
S.
East Coast, with varied coupling of the hydrodynamic and wave components to isolate the effect of the currents on the waves, and the effect of the Gulf Stream relative to storm-driven circulation.
The Gulf Stream modifies the direction of the storm-driven currents beneath the right side of the hurricane.
Waves transitioned from following currents that result in wave lengthening, through negative current gradients that result in wave steepening and dissipation.
Wave–current interaction over the Gulf Stream modified maximum coastal total water levels and changed incident wave directions at the coast by up to 20°, with strong implications for the morphodynamic response and stability of the coast to the hurricane.
Related Results
Along-stream evolution of Gulf Stream volume transport and water properties from underwater glider observations
Along-stream evolution of Gulf Stream volume transport and water properties from underwater glider observations
<p>The Gulf Stream is the western boundary current in the subtropical North Atlantic and a principal component of the upper limb of the Atlantic Meridional Overturnin...
Jackup Operations: New Operational Recommended Practices
Jackup Operations: New Operational Recommended Practices
Abstract
The 2005 U.S. Gulf of Mexico hurricane season validated the industry's practice of "shut-in and evacuate". Successful application of this practice result...
Hurricane Eloise Directional Wave Energy Spectra
Hurricane Eloise Directional Wave Energy Spectra
ABSTRACT
Directiona1 wave energy spectra, calculated from data recorded during Hurricane Eloise (Gulf of Mexico, 1975), are presented. The spectra, based on an en...
Measured And Predicted Wave Forces On Offshore Platforms
Measured And Predicted Wave Forces On Offshore Platforms
ABSTRACT
Measured wave force data from the Conoco Test Structure in hurricane Carmen have been analyzed on a wave by wave basis to determine the total hydrodynami...
Oceanographic Data from Hurricane Camille
Oceanographic Data from Hurricane Camille
ABSTRACT
A network of ocean data gathering stations was installed in the Gulf of Mexico in 1968. Hurricane Camille passed between two or these stations on August ...
Probabilistic Models for Texas Gulf Coast Hurricane Occurrences
Probabilistic Models for Texas Gulf Coast Hurricane Occurrences
ABSTRACT
The occurrence of Texas Gulf Coast hurricanes is analyzed using various statistical methods. Simple Poisson, periodic Poisson, and Markov chain models ar...
Lahar simulation using Laharz_py program for the Mt. Halla volcano, Jeju, Korea
Lahar simulation using Laharz_py program for the Mt. Halla volcano, Jeju, Korea
This study using Laharz_py program, was performed schematic prediction
on the impact area of lahar hazards at the Mt. Halla volcano, Jeju
island volcanic field, Korea. In order to ...
Gulf of Mexico Environmental Program
Gulf of Mexico Environmental Program
ABSTRACT
The Gulf Universities Research Corporation, representing approximately 1400 academic scientists with some involvement in marine and coastal affairs, has ...

