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Variational data analysis of aerosol species in a regional CTM: background error covariance constraint and aerosol optical observation operators

机译:区域CTM中气溶胶种类的变异数据分析:背景误差协方差约束和气溶胶光学观测算子

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摘要

A multivariate variational data assimilation scheme for the Multiple-scale Atmospheric Transport and CHemistry (MATCH) model is presented and tested. A spectral, non-separable approach is chosen for modelling the background error constraints. Three different methods are employed for estimating background error covariances, and their analysis performances are compared. Observation operators for aerosol optical parameters are presented for externally mixed particles. The assimilation algorithm is tested in conjunction with different background error covariance matrices by analysing lidar observations of aerosol backscattering coefficient. The assimilation algorithm is shown to produce analysis increments that are consistent with the applied background error statistics. Secondary aerosol species show no signs of chemical relaxation processes in sequential assimilation of lidar observations, thus indicating that the data analysis result is well balanced. However, both primary and secondary aerosol species display emission- and advection-induced relaxations.
机译:提出并测试了多尺度大气传输和化学(MATCH)模型的多元变数数据同化方案。选择一种光谱的,不可分离的方法来对背景误差约束进行建模。三种不同的方法被用来估计背景误差协方差,并比较了它们的分析性能。介绍了用于外部混合颗粒的气溶胶光学参数的观测算子。通过分析激光雷达对气溶胶反向散射系数的观测结果,结合不同的背景误差协方差矩阵对同化算法进行了测试。示出了同化算法产生的分析增量与所应用的背景误差统计一致。次级气溶胶物种在激光雷达观测结果的顺序同化中没有显示出化学弛豫过程的迹象,因此表明数据分析结果非常平衡。然而,初级和次级气溶胶种类均显示出排放和对流引起的弛豫。

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