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Ocean Surface Currents From AVHRR Imagery: Comparison With Land-Based HF Radar Measurements

机译:AVHRR影像的海面电流:与陆基HF雷达测量结果的比较

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We focus on inverting the surface temperature (or heat) equation to obtain the surface velocity field in the coastal ocean and compare the results with those from the maximum cross correlation (MCC) technique and with the in situ velocity fields measured by the Rutgers University Coastal Ocean Dynamics Radar (CODAR). When compared with CODAR fields, velocities from the heat equation and MCC have comparable accuracies, but the heat equation technique better resolves the finer scale flow features. We use the results to directly calculate the surface divergence and vorticity. This is possible because we convert the traditionally underdetermined heat inversion problem to an overdetermined one without constraining the velocity field with divergence, vorticity, or energy statements. Because no a priori assumptions are made about the vorticity, it can be calculated directly from the velocity results. The derived vorticity field has typical open-ocean magnitudes $(sim 5 times 10^{-5}/hbox{s})$ and exhibits several structures (a warm core ring, Gulf Stream filament, and a diverging flow) consistent with the types of flows required to kinematically deform the sea surface temperature patterns into the observed configurations.
机译:我们专注于反演表面温度(或热量)方程以获得沿海海洋中的表面速度场,并将结果与​​最大互相关(MCC)技术的结果以及罗格斯大学沿海地区测量的原位速度场进行比较海洋动力雷达(CODAR)。与CODAR场进行比较时,热方程和MCC的速度具有可比的精度,但是热方程技术可以更好地解决更细尺度的流动特征。我们使用结果直接计算表面散度和涡度。这是可能的,因为我们将传统上不确定的热转化问题转换为过度确定的问题,而没有用散度,涡度或能量陈述约束速度场。由于没有先验的涡度假设,因此可以直接根据速度结果进行计算。派生的涡度场具有典型的开放海洋量级((sim 5乘以10 ^ {-5} / hbox {s})),并显示出与海平面一致的几种结构(暖芯环,湾流细丝和发散流)。运动使海面温度模式转变为观测构造所需的各种类型的流量。

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