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首页> 外文期刊>Frontiers in Marine Science >Integration of HF Radar Observations for an Enhanced Coastal Mean Dynamic Topography
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Integration of HF Radar Observations for an Enhanced Coastal Mean Dynamic Topography

机译:整合HF雷达观测,以增强沿海平均动态地形

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Satellite altimeters provide continuous information of the sea level variability and mesoscale processes for the global ocean. For estimating the sea level above the geoid and monitoring the full ocean dynamics from altimeters measurements, a key reference surface is needed: The Mean Dynamic Topography (MDT). However, in coastal areas, where, in-situ measurements are sparse and the typical scales of the motion are generally smaller than in the deep ocean, the global MDT solutions are less accurate than in the open ocean, even if significant improvement has been done in the past years. An opportunity to fill in this gap has arisen with the growing availability of long time-series of high-resolution HF radar surface velocity measurements in some areas, such as the south-eastern Bay of Biscay. The prerequisite for the computation of the local MDT, using the newly available data of surface velocities, was to obtain a robust methodology to remove the ageostrophic signal from the HF radar measurements, in coherence with the scales resolved by the altimetry. To that end, we first filtered out the tidal and inertial motions and then, we developed and tested a method that removed the Ekman component, and the remaining divergent part of the flow. A regional high-resolution hindcast simulation was used to assess the method. Then, the processed HF radar geostrophic velocities were used in synergy with additional in-situ data, altimetry, and gravimetry to compute a new local MDT, which shows significant improvement compared with the previous MDT. This study showcases the benefit of combining satellite data with continuous, high-frequency, and synoptic in-situ velocity data from coastal radar measurements; taking advantage of the different scales resolved by each of the measuring systems. The integrated analysis of in-situ observations, satellite data, and numerical simulations has provided a further step in the understanding of the local ocean processes, and the new MDT a basis for more reliable monitoring of the study area. Recommendations for the replicability of the methodology in other coastal areas are provided. Finally, the methods developed in this study and the more accurate regional MDT could benefit present and future high-resolution altimetric missions.
机译:卫星高度计提供了全球海洋级别变异性和Mesoscale流程的持续信息。为了估计大地线上方的海平面,并从高度计测量监测完整的海洋动力学,需要一个关键参考表面:平均动态地形(MDT)。然而,在沿海地区,在原地测量稀疏并且运动的典型尺度通常小于深海中,即使已经进行了重大改进,全球MDT解决方案也比开阔的海洋更加准确在过去几年里。填补了这种差距的机会,在一些领域的长时间系列的高分辨率HF雷达表面速度测量中越来越多的可用性,如贝斯卡斯东南部湾。使用新可用的表面速度数据计算本地MDT的先决条件是获得稳健的方法,以便从HF雷达测量中移除来自HF雷达测量的古代滴性信号,以与Altimetry解析的尺度相干。为此,我们首先过滤了潮汐和惯性动作,然后,我们开发并测试了一种去除Ekman组件的方法,以及流量的剩余发散部分。区域高分辨率的Hindcast模拟用于评估该方法。然后,使用额外的原位数据,高度测量法和重量计来计算加工的HF雷达热速度,以计​​算新的本地MDT,其与前一个MDT相比显示出显着改善。本研究展示了与沿海雷达测量的连续,高频和天气原位速度数据组合卫星数据的益处;利用每个测量系统解决的不同尺度。原位观察,卫星数据和数值模拟的综合分析提供了对当地海洋过程的进一步了解,新的MDT是对研究区域更可靠的监测的基础。提供了其他沿海地区的方法的可复制性的建议。最后,在本研究中开发的方法和更准确的区域MDT可以受益于现在和未来的高分辨率优化任务。

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