SAR Observations and WRF Modeling of Marine Atmospheric Phenomena

X. Li, W. Zheng, D. Shen
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Abstract

The interaction between ocean/atmosphere physical processes and the short Bragg and intermediate oceanic gravity waves will lead to a change in sea surface roughness, which is one of the key parameters that need to be measured from the space. Spaceborne synthetic aperture radar (SAR) can measure the ocean and ice surface roughness in the microwave band without being hampered by cloud cover and lack of Sun light during nighttime. Modern SAR's are high-spatial-resolution (10 m) and wide-swath (up to 450km) imaging radars that can “view” these sea surface roughness patterns associated with marine atmospheric boundary layer phenomena in great details. In this presentation, dynamical features associated with these phenomena (tropical cyclones, atmospheric vortex streets, atmospheric gravity waves, fronts, katabatic winds) will be presented. The state-of-the-art WRF model can now simulate the atmospheric conditions in a spatial resolution comparable to that of spaceborne SAR. We implemented the nested WRF numerical model with actual meteorological conditions as inputs to simulate the 3D structure and the temporal evolution of some of the marine atmospheric phenomena. The sea surface wind patterns simulated by the WRF model and observed by SAR are compared to cross validate of the model run results.
海洋大气现象的SAR观测和WRF模拟
海洋/大气物理过程与短Bragg和中间海洋重力波的相互作用将导致海面粗糙度的变化,这是需要从空间测量的关键参数之一。星载合成孔径雷达(SAR)可以在微波波段测量海洋和冰层表面粗糙度,而不受云层覆盖和夜间缺乏阳光的影响。现代SAR是高空间分辨率(10米)和宽波段(高达450公里)的成像雷达,可以非常详细地“观察”这些与海洋大气边界层现象相关的海面粗糙度模式。在本报告中,将介绍与这些现象(热带气旋、大气涡旋街、大气重力波、锋面、倒转风)相关的动力学特征。目前,最先进的WRF模式可以以与星载SAR相当的空间分辨率模拟大气状况。我们采用以实际气象条件为输入的嵌套WRF数值模式,模拟一些海洋大气现象的三维结构和时间演变。将WRF模式模拟的海面风型与SAR观测的海面风型进行对比,对模式运行结果进行交叉验证。
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