Title :
Radar backscattering modeling of oil slicks at Sea based on the model of local balance
Author :
Pinel, N. ; Bourlier, C. ; Sergievskaya, I.
Author_Institution :
Alyotech TS&I, Alyotech, Rennes, France
Abstract :
This paper aims at presenting a refined electromagnetic modeling based on a physical hydrodynamic model of surface damping by the presence of oil films, the model of local balance (MLB). It focuses on the case of one-dimensional (1D) surfaces, corresponding to two-dimensional problems, for a more thorough study which makes it possible to use a numerical reference method (PILE method), based on the Method of Moments. In this context, for an effective modeling of the complex double-layer problem (air/oil and oil/sea surfaces), two simplifying asymptotic approaches are presented and tested: the so-called “thin-layer” and “classical” approaches, which make it possible to treat this problem as a much more simple single-layer problem, just like the clean sea surface case. Then, the validity of the two approaches is studied by comparison with the PILE method. The main conclusion of this study is that, for the typical thicknesses studied here, the “thin-layer” approach is the most reliable for near-nadir incidence configurations and can then be used for altimeter applications, whereas the “classical” approach is the most reliable for moderate incidence angles and can be successfully used for satellite applications.
Keywords :
marine pollution; oil pollution; water quality; 1D surface; MLB; PILE method; air-oil surface; altimeter application; asymptotic approach simplification; classical approach; clean sea surface case; complex double-layer problem effective modeling; local balance model; method-of-moment; moderate incidence angle; near-nadir incidence configurations; numerical reference method; oil film presence; oil-sea surface; one-dimensional surface; refined electromagnetic modeling; satellite application; sea oil slick radar backscattering modeling; simple single-layer problem; surface damping physical hydrodynamic model; thin-layer approach; two-dimensional problem; Damping; Radar; Sea surface; Surface cleaning; Surface contamination; Surface waves; Wind speed; Hydrodynamics; oil slicks; sea surface electromagnetic scattering; thin films; water pollution;
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2014 IEEE International
Conference_Location :
Quebec City, QC
DOI :
10.1109/IGARSS.2014.6947626