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Ensemble perturbation smoother for optimizing tidal boundary conditions by assimilation of High-Frequency radar surface currents - application to the German Bight

机译:集成扰动平滑器,可通过吸收高频雷达表面电流来优化潮汐边界条件-在德国海岸线上的应用

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摘要

High-Frequency (HF) radars measure the ocean surface currents at various spatial and temporal scales. These include tidal currents, wind-driven circulation, density-driven circulation and Stokes drift. Sequential assimilation methods updating the model state have been proven successful to correct the density-driven currents by assimilation of observations such as sea surface height, sea surface temperature and in-situ profiles. However, the situation is different for tides in coastal models since these are not generated within the domain, but are rather propagated inside the domain through the boundary conditions. For improving the modeled tidal variability it is therefore not sufficient to update the model state via data assimilation without updating the boundary conditions. The optimization of boundary conditions to match observations inside the domain is traditionally achieved through variational assimilation methods. In this work we present an ensemble smoother to improve the tidal boundary values so that the model represents more closely the observed currents. To create an ensemble of dynamically realistic boundary conditions, a cost function is formulated which is directly related to the probability of each boundary condition perturbation. This cost function ensures that the boundary condition perturbations are spatially smooth and that the structure of the perturbations satisfies approximately the harmonic linearized shallow water equations. Based on those perturbations an ensemble simulation is carried out using the full three-dimensional General Estuarine Ocean Model (GETM). Optimized boundary values are obtained by assimilating all observations using the covariances of the ensemble simulation.
机译:高频(HF)雷达可在各种时空尺度上测量海面洋流。这些因素包括潮流,风驱动的循环,密度驱动的循环和斯托克斯漂移。事实证明,通过更新观测值(如海面高度,海面温度和原位剖面),用顺序同化方法更新模型状态可以成功地校正密度驱动的电流。但是,对于沿海模型中的潮汐,情况有所不同,因为这些潮汐不是在域内生成的,而是通过边界条件在域内传播的。为了改善建模的潮汐变化性,因此仅通过数据同化而不更新边界条件来更新模型状态是不够的。传统上,通过变分同化方法可以优化边界条件以匹配区域内的观测值。在这项工作中,我们提出了一个整体平滑器来改善潮汐边界值,以便模型更紧密地表示观测到的水流。为了创建动态逼真的边界条件的集合,制定了一个成本函数,该函数与每个边界条件扰动的概率直接相关。此成本函数可确保边界条件摄动在空间上平滑,并且摄动的结构近似满足谐波线性化浅水方程。基于这些扰动,使用完整的三维通用河口海洋模型(GETM)进行整体模拟。通过使用集成模拟的协方差对所有观察值进行同化,可以获得最佳边界值。

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