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FY-3A Microwave Data Assimilation Based on the POD-4DEnVar Method

机译:基于POD-4DEnVar方法的FY-3A微波数据同化

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A four-dimensional ensemble variational assimilation system for FY-3A satellite data is constructed using the Proper Orthogonal Decomposition (POD)-based ensemble four-dimensional variational (4DVar) assimilation method (referred to as POD-4DEnVar Satellite Assimilation System). Using the community radiative transfer model (CRTM) as the observation operator for satellite data, ensemble samples are mapped to the observation space and observation perturbations are generated. The observation perturbations matrix of satellite data is then decomposed to obtain the orthogonal eigenvectors and the eigenvalues for the observation perturbations matrix. The observation perturbations matrix and model perturbations matrix are transformed using orthogonal eigenvectors as basis functions and an explicit expression for the analysis increment is obtained. The expression includes the flow-dependent background error covariance and avoids the difficulty of solving the adjoint model for four-dimensional variational assimilation. In order to evaluate the capability of POD-4DEnVar Satellite Assimilation System, single observation experiments and observation system simulation experiments (OSSEs) for FY-3A MWHS and MWTS sensor data were designed to simulate a large-scale precipitation event occurring over the middle and lower reaches of the Yangtze River. The results of single observation experiments show that POD-4DEnVar Satellite Assimilation System can assimilate satellite data correctly, and the background error covariance of POD-4DEnVar Satellite Assimilation System has obvious flow-dependent characteristics. The results of the OSSEs show that the root-mean-square errors (RMSEs) of the assimilation analysis field with respect to the “true” field are lower than those of the background field, which indicates that the POD-4DEnVar Satellite Assimilation System can assimilate satellite data effectively. The sensitivity of the POD-4DEnVar Satellite Assimilation System to the percentage of truncated eigenvalues, the number of ensemble members, assimilation time window length, and the horizontal localization scale (which are key parameters for POD-4DEnVar Satellite Assimilation System) was tested in sensitivity experiments. These experiments show that if the percentage of truncated eigenvalues for POD decomposition is more than 80%, POD-4DEnVar Satellite Assimilation System has strong assimilation skill. Increasing the number of initial ensemble members has little influence on the assimilation ability of POD-4DEnVar Satellite Assimilation System. But, increasing the number of the physical ensemble members can clearly increase the assimilation ability. The assimilation skill of POD-4DEnVar Satellite Assimilation System is optimal when the length of the assimilation time window is 5 h or 3 h and the horizontal localization scale is 500 km or above. The assimilation ability of POD-4DEnVar Satellite Assimilation System is preliminarily tested by single observation experiments and OSSEs. The results show that it is feasible to assimilate satellite data using the POD-4DEnVar method. In the future, a variety of real satellite data and a variety of mesoscale weather cases will be used to further verify the stability of POD-4DEnVar Satellite Assimilation System.
机译:使用基于正确正交分解(POD)的集合四维变分(4DVar)同化方法(称为POD-4DEnVar卫星同化系统),构建了FY-3A卫星数据的四维集合变分同化系统。使用社区辐射传输模型(CRTM)作为卫星数据的观测算子,将集合样本映射到观测空间并生成观测扰动。然后分解卫星数据的观测扰动矩阵,以获得正交特征向量和观测扰动矩阵的特征值。以正交特征向量为基函数对观测扰动矩阵和模型扰动矩阵进行变换,得到分析增量的显式。该表达式包括与流量相关的背景误差协方差,并且避免了求解伴随模型的四维变分同化的困难。为了评估POD-4DEnVar卫星同化系统的能力,设计了FY-3A MWHS和MWTS传感器数据的单观测实验和观测系统模拟实验(OSSE),以模拟发生在中下部的大规模降水事件长江上游。单次观测实验结果表明,POD-4DEnVar卫星同化系统可以正确同化卫星数据,POD-4DEnVar卫星同化系统的背景误差协方差具有明显的流量相关特性。 OSSE的结果表明,同化分析字段相对于“真实”字段的均方根误差(RMSE)低于背景字段的均方根误差,这表明POD-4DEnVar卫星同化系统可以有效吸收卫星数据。测试了POD-4DEnVar卫星同化系统对截断特征值百分比,集合成员数,同化时间窗长度和水平定位比例(这是POD-4DEnVar卫星同化系统的关键参数)的敏感性。实验。这些实验表明,如果POD分解的截断特征值百分比大于80%,则POD-4DEnVar卫星同化系统具有很强的同化能力。增加初始合奏成员的数量对POD-4DEnVar卫星同化系统的同化能力影响很小。但是,增加物理合奏成员的数量可以明显提高同化能力。 POD-4DEnVar卫星同化系统的同化技巧在同化时间窗口的长度为5 h或3 h且水平定位范围为500 km或以上时是最佳的。通过单次观测实验和OSSE,初步测试了POD-4DEnVar卫星同化系统的同化能力。结果表明,使用POD-4DEnVar方法吸收卫星数据是可行的。将来,将使用各种实际卫星数据和各种中尺度天气案例来进一步验证POD-4DEnVar卫星同化系统的稳定性。

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