DocumentCode :
1887027
Title :
The impact of thermal stratification and wind stress on sea surface features in SAR imagery
Author :
Fujimura, Atsushi ; Matt, Silvia ; Soloviev, Alexander ; Maingot, Chris ; Rhee, Shin H.
Author_Institution :
Rosenstiel Sch. of Marine & Atmos. Sci., Univ. of Miami, Miami, FL, USA
fYear :
2011
fDate :
24-29 July 2011
Firstpage :
2037
Lastpage :
2040
Abstract :
We have conducted high-resolution numerical experiments with the computational fluid dynamics (CFD) software ANSYS FLUENT on the dynamics of centerline ship wakes and rain-formed plumes in the presence of wind stress. The ship wake model is initialized with the velocity field from numerical simulations using a model with a ship hull and propellers. We then apply wind stress perpendicular to the centerline wake. We simulate SAR images with a radar imaging algorithm using the surface velocity field produced by the CFD model. Results show ship wake asymmetry since the wind stress enhances flow convergence upwind of the centerline wake and reduces it on the downwind side. The results are qualitatively consistent with available SAR images. We added a near-surface thermal stratification (e.g., diurnal thermocline) to the model during initialization and investigated the impact on the ship wake hydrodynamics. Stratification appears to influence the spreading of the wake, while the circulation in the wake can bring colder water to the surface. For the plume simulation, we initialize the model with a low-density plume imitating randomly distributed rainfall. The plume structure also shows asymmetry relative to the wind direction in simulated radar images.
Keywords :
computational fluid dynamics; geophysical fluid dynamics; geophysics computing; hydrodynamics; ocean temperature; ocean waves; rain; remote sensing by radar; seawater; ships; synthetic aperture radar; wind; ANSYS FLUENT software; SAR imagery; centerline wake; computational fluid dynamics software; diurnal thermocline; flow convergence; high resolution numerical experiment; near surface thermal stratification; plume simulation; plume structure; radar imaging algorithm; rain formed plume; randomly distributed rainfall; sea surface feature; ship hull; ship propeller; ship wake hydrodynamics; ship wake model; surface velocity field; wake circulation; wind stress; Computational fluid dynamics; Computational modeling; Marine vehicles; Numerical models; Ocean temperature; Radar imaging; Sea surface; Ship wake; computational fluid dynamics; numerical simulation; synthetic aperture radar;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2011 IEEE International
Conference_Location :
Vancouver, BC
ISSN :
2153-6996
Print_ISBN :
978-1-4577-1003-2
Type :
conf
DOI :
10.1109/IGARSS.2011.6049531
Filename :
6049531
Link To Document :
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