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Assimilating aerosol observations with a “hybrid” variational-ensemble data assimilation system

机译:使用“混合”变分集合数据同化系统对气溶胶观测值进行同化

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Total 550nm aerosol optical depth, surface fine particulate matter (PM2.5), and meteorological observations were assimilated with continuously cycling three-dimensional variational (3DVAR), ensemble square root Kalman filter (EnSRF), and hybrid variational-ensemble data assimilation systems. The hybrid system’s background error covariances (BECs) were a blend of those in 3DVAR and produced by the cycling EnSRF system, and the 3DVAR, EnSRF, and hybrid systems differed almost exclusively by their BECs. New analyses were produced every 6 h between 0000 UTC 1 June and 1800 UTC 14 July 2010 over a domain encompassing the contiguous United States (CONUS) and adjacent areas. Additionally, a control experiment that only assimilated meteorological observations was performed. Each 1800 UTC analysis initialized a 48 h Weather Research and Forecasting with Chemistry model forecast. These forecasts were evaluated with a focus on air quality prediction. The ensemble aerosol spread was generally insufficient, particularly over the western CONUS. However, despite the suboptimal ensemble spread, the hybrid system performed quite well and usually produced the best aerosol forecasts. Additionally, both the 3DVAR- and EnSRF-initialized forecasts typically outperformed the control. These results are encouraging and suggest the resiliency of the hybrid method. Improved aerosol ensembles should translate into even better future hybrid forecasts.
机译:550nm气溶胶的总光学深度,表面细颗粒物(PM2.5)和气象观测结果均与连续循环三维变分(3DVAR),集合平方根卡尔曼滤波器(EnSRF)和混合变分集合数据同化系统同化。混合系统的背景误差协方差(BEC)是由循环EnSRF系统产生的3DVAR中的误差的混合,而3DVAR,EnSRF和混合系统的BEC几乎完全不同。在0000 UTC 6月1日至1800 UTC 2010年7月14日之间,每6小时进行一次新分析,分析范围涉及美国(CONUS)及其邻近地区。另外,进行了仅吸收气象观测的对照实验。每次1800 UTC分析都会使用化学模型预测来初始化48小时的天气研究和预测。这些预测的评估重点是空气质量预测。总体气溶胶扩散通常是不足的,特别是在西部CONUS上空。然而,尽管总体扩散不理想,但混合系统仍表现良好,通常能产生最佳的气溶胶预报。此外,3DVAR和EnSRF初始化的预测通常都优于控件。这些结果令人鼓舞,并暗示了混合方法的弹性。改进的气溶胶集合将转化为更好的未来混合动力预报。

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