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Observations of radar/optical slick signatures of marine processes in the coastal zone

机译:沿海地区海洋过程雷达/光学光滑签名的观察

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Analysis of possibilities of identification and characterization of marine processes using their signatures in radar and optical imagery of the sea surface is a very important problem of the ocean remote sensing which has not been solved yet completely by now. Marine slicks which are the areas of suppressed wind waves can be recorded by different sensors and can be indicators of internal waves, non uniform currents, atmospheric convective cells, etc. Field studies including those simultaneous and co-located with remote observations is the most perspective way to the problem solution. An expedition of the Institute of Applied Physics RAS was organized to study the nature of slick bands and its dynamics in the field of various subsurface processes. Field experiments were carried out in the coastal zone of the Black sea from the Oceanographic Platform of Marine Hydrophysical Institute RAS and from the shore. The structure of the currents in the studied area is characterized by significant heterogeneity, so we were able to register different slick structures in the flow field and wind and the slick dynamics. In some experiments, marine slicks were recorded simultaneously in satellite Sentinel images. Observations of surface manifestations of internal waves were carried out using a digital radar station MRS-1000 and multi-frequency radar complex of IAP RAS. At the same time the measurements of currents in the water column were carried out using the ADCP WH Monitor 1200 kHz, wind speed and direction at a height of 30 meters using WindSonic acoustic anemometer. During the passage of internal waves a system of slick bands with a reduced intensity of small-scale waves were observed. Slick bands were observed mainly over the rear slopes of the internal waves; the data from the accompanying measurements showed that the phase velocity was close to the surface current velocity. Theoretical analysis has shown that in this case the convergent zones, where surfactants are accumulated were formed at the rear slopes of the internal waves. This mechanism of slick formation was predicted earlier theoretically and then was modeled in laboratory experiment.
机译:利用其雷达和光学图像识别和表征的识别和表征的可能性分析,以及海面的光学图像是海洋遥感的一个非常重要的问题,目前尚未完全解决。作为抑制风波区域的海洋光滑可以通过不同的传感器记录,并且可以是内部波,非均匀电流,大气对流细胞等指示器。现场研究,包括同时和共同定位的远程观测是最重要的解决问题解决方案的方法。组织了应用物理研究所的探险,以研究各种地下过程领域的光滑频段及其动力学的性质。现场实验是在海洋水流理学院Ras的海洋平台和岸边的海洋平台的沿海地区进行。研究区域中的电流的结构的特征在于显着的异质性,因此我们能够在流场和风中注册不同的光滑结构和SLICK动态。在一些实验中,在卫星哨兵图像中同时记录海洋光滑。使用IAP RAS的数字雷达站MRS-1000和多频雷达复合物进行内部波的表面表现的观察。同时,使用挡风玻璃声学风速计使用ADCP WH监测1200 kHz,风速和方向的ADCP WH监测1200 kHz,风速和方向的测量。在内部波通过期间,观察到具有降低的小规模波强度的光学条带系统。光滑带主要观察到内部波的后斜坡;来自伴奏测量的数据表明,相速度靠近表面电流速度。理论分析表明,在这种情况下,在内部波的后斜坡上形成累积表面活性剂的收敛区。理论上之前预先预测了这种光滑形成机制,然后在实验室实验中进行了建模。

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