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首页> 外文期刊>Journal of marine systems: journal of the European Association of Marine Sciences and Techniques >A data assimilation tool for the Pagasitikos Gulf ecosystem dynamics: Methods and benefits
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A data assimilation tool for the Pagasitikos Gulf ecosystem dynamics: Methods and benefits

机译:Pagasitikos海湾生态系统动力学的数据同化工具:方法和优势

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Within the framework of the European INSEA project, an advanced assimilation system has been implemented for the Pagasitikos Gulf ecosystem. The system is based on a multivariate sequential data assimilation scheme that combines satellite ocean sea color (chlorophyll-a) data with the predictions of a three-dimensional coupled physical-biochemical model of the Pagasitikos Gulf ecosystem presented in a companion paper. The hydrodynamics are solved with a very high resolution (1/100°) implementation of the Princeton Ocean Model (POM). This model is nested within a coarser resolution model of the Aegean Sea which is part of the Greek POSEIDON forecasting system. The forecast of the Aegean Sea model, itself nested and initialized from a Mediterranean implementation of POM, is also used to periodically re-initalize the Pagatisikos hydrodynamics model using variational initialization techniques. The ecosystem dynamics of Pagasitikos are tackled with a stand-alone implementation of the European Seas Ecosystem Model (ERSEM). The assimilation scheme is based on the Singular Evolutive Extended Kalman (SEEK) filter, in which the error statistics are parameterized by means of a suitable set of Empirical Orthogonal Functions (EOFs).The assimilation experiments were performed for year 2003 and additionally for a 9-month period over 2006 during which the physical model was forced with the POSEIDON-ETA 6-hour atmospheric fields. The assimilation system is validated by assessing the relevance of the system in fitting the data, the impact of the assimilation on non-observed biochemical processes and the overall quality of the forecasts. Assimilation of either GlobColour in 2003 or SeaWiFS in 2006 chlorophyll-a data enhances the identification of the ecological state of the Pagasitikos Gulf. Results, however, suggest that subsurface ecological observations are needed to improve the controllability of the ecosystem in the deep layers.
机译:在欧洲INSEA项目的框架内,已为Pagasitikos海湾生态系统实施了先进的同化系统。该系统基于多变量顺序数据同化方案,该方案将卫星海洋颜色(叶绿素-a)数据与Pagasitikos Gulf生态系统的三维耦合物理-生化模型的预测相结合,并在另一篇论文中提出。普林斯顿海洋模型(POM)的高分辨率(1/100°)实现解决了流体动力学问题。该模型嵌套在爱琴海的较粗分辨率模型中,该模型是希腊POSEIDON预报系统的一部分。爱琴海模型的预报本身是从POM的地中海实施中嵌套和初始化的,还用于使用变分初始化技术定期重新初始化Pagatisikos流体力学模型。 Pagasitikos的生态系统动力学可以通过独立实施欧洲海洋生态系统模型(ERSEM)来解决。同化方案基于奇异扩展卡尔曼(SEEK)滤波器,其中误差统计数据通过一组合适的经验正交函数(EOF)进行参数设置.2003年进行了同化实验,另外还进行了9次同化实验在2006年的一个月中,物理模型被POSEIDON-ETA的6小时大气场强迫。通过评估系统拟合数据的相关性,同化对未观察到的生化过程的影响以及预测的总体质量来验证同化系统。 2003年的GlobColour或2006年的SeaWiFS吸收叶绿素-a数据可增强对Pagasitikos海湾生态状态的识别。但是,结果表明,需要进行地下生态观测来改善深层生态系统的可控性。

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