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Assimilating aerosol optical properties related to size and absorption from POLDER/PARASOL with an ensemble data assimilation system

机译:使用集合数据同化系统,同化与膨胀器/遮阳伞的尺寸和吸收相关的气溶胶光学性质

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A data assimilation system for aerosol, based on an ensemble Kalman filter, has been developed for the ECHAM – Hamburg Aerosol Model (ECHAM-HAM) global aerosol model and applied to POLarization and Directionality of the Earth's Reflectances (POLDER)-derived observations of optical properties. The advantages of this assimilation system is that the ECHAM-HAM aerosol modal scheme carries both aerosol particle numbers and mass which are both used in the data assimilation system as state vectors, while POLDER retrievals in addition to aerosol optical depth (AOD) and the ?ngstr?m exponent (AE) also provide information related to aerosol absorption like aerosol absorption optical depth (AAOD) and single scattering albedo (SSA). The developed scheme can simultaneously assimilate combinations of multiple variables (e.g., AOD, AE, SSA) to optimally estimate mass mixing ratio and number mixing ratio of different aerosol species. We investigate the added value of assimilating AE, AAOD and SSA, in addition to the commonly used AOD, by conducting multiple experiments where different combinations of retrieved properties are assimilated. Results are evaluated with (independent) POLDER, Moderate Resolution Imaging Spectroradiometer (MODIS) Dark Target, MODIS Deep Blue and Aerosol Robotic Network (AERONET) observations. The experiment where POLDER AOD, AE and SSA are assimilated shows systematic improvement in mean error, mean absolute error and correlation for AOD, AE, AAOD and SSA compared to the experiment where only AOD is assimilated. The same experiment reduces the global ME against AERONET from 0.072 to 0.001 for AOD, from 0.273 to 0.009 for AE and from ? 0.012 to 0.002 for AAOD. Additionally, sensitivity experiments reveal the benefits of assimilating AE over AOD at a second wavelength or SSA over AAOD, possibly due to a simpler observation covariance matrix in the present data assimilation framework. We conclude that the currently available AE and SSA do positively impact data assimilation.
机译:基于Ensemble Kalman滤波器的气溶胶数据同化系统已经为ECHAM - 汉堡气溶胶模型(ECHAM-HAM)全球气溶胶模型开发,并应用于地球反射的极化和方向性(圩田)的光学观察特性。这种同化系统的优点是回波 - 火腿气溶胶模态方案携带气溶胶颗粒数和质量,这些气溶胶颗粒数和质量均在数据同化系统中作为状态载体,而圩区检索除了气溶胶光学深度(AOD)和何处NGSTR?M代表(AE)还提供与气溶胶吸收光学深度(AAOD)和单散射Albedo(SSA)等气溶胶吸收有关的信息。开发方案可以同时将多个变量(例如,AOD,AE,SSA)的组合同时同化与不同气溶胶种类的最佳估计质量混合比和数量混合比的组合。除了常用的AOD之外,我们研究了同化AE,AAOD和SSA的附加值,除了常用的AOD,通过进行多个实验,其中同化检索属性的不同组合。结果是用(独立的)圩区,中等分辨率成像光谱仪(MODIS)黑暗目标,MODIS深蓝色和气溶胶机器人网络(AEROONET)观测的评估结果。普及AOD,AE和SSA被同化的实验显示了平均误差的系统改善,与AOD,AE,AAOD和SSA的平均值误差和相关性与实验相比,其中仅同化AOD。同样的实验将全球ME减少到AOD 0.072至0.001的AERO,从0.273到0.009,以及来自的? AAOD 0.012至0.002。另外,敏感性实验揭示了在AAOD上的第二波长或SSA在第二波长或SSA的AOO上同化AE的益处,可能是由于本数据同化框架中更简单的观察协方差矩阵。我们得出结论,目前可用的AE和SSA确实影响了数据同化。

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