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首页> 外文期刊>Journal of the air & waste management association >Using optimal interpolation to assimilate surface measurements and satellite AOD for ozone and PM_(2.5): A case study for July 2011
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Using optimal interpolation to assimilate surface measurements and satellite AOD for ozone and PM_(2.5): A case study for July 2011

机译:使用最佳插值吸收臭氧和PM_(2.5)的表面测量值和卫星AOD:2011年7月的案例研究

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摘要

We employed an optimal interpolation (OI) method to assimilate AIRNow ozone/PM2.5 and MODIS (Moderate Resolution Imaging Spectroradiometer) aerosol optical depth (AOD) data into the Community Multi-scale Air Quality (CMAQ) model to improve the ozone and total aerosol concentration for the CMAQ simulation over the contiguous United States (CONUS). AIRNow data assimilation was applied to the boundary layer, and MODIS AOD data were used to adjust total column aerosol. Four OI cases were designed to examine the effects of uncertainty setting and assimilation time; two of these cases used uncertainties that varied in time and location, or "dynamic uncertainties." More frequent assimilation and higher model uncertainties pushed the modeled results closer to the observation. Our comparison over a 24-hr period showed that ozone and PM_(2.5) mean biases could be reduced from 2.54 ppbV to 1.06 ppbV and from -7.14 μg/m~3 to -0.11 μg/m~3, respectively, over CONUS, while their correlations were also improved. Comparison to DISCOVER-AQ 2011 aircraft measurement showed that surface ozone assimilation applied to the CMAQ simulation improves regional low-altitude (below 2 km) ozone simulation.
机译:我们采用最佳插值(OI)方法将AIRNow臭氧/PM2.5和MODIS(中等分辨率成像光谱仪)气溶胶光学深度(AOD)数据吸收到社区多尺度空气质量(CMAQ)模型中,以改善臭氧和总臭氧量。连续美国(CONUS)上CMAQ模拟的气溶胶浓度。将AIRNow数据同化应用于边界层,并使用MODIS AOD数据调整总柱气溶胶。设计了四个OI案例以检查不确定性设置和同化时间的影响;其中两个案例使用的时间和位置都存在不确定性,也称为“动态不确定性”。更加频繁的同化和更高的模型不确定性使建模结果更接近于观测。我们在24小时内进行的比较显示,在CONUS上,臭氧和PM_(2.5)的平均偏差可以分别从2.54 ppbV降低到1.06 ppbV和从-7.14μg/ m〜3降低到-0.11μg/ m〜3。而它们的相关性也得到了改善。与DISCOVER-AQ 2011飞机测量结果的比较表明,将地面臭氧吸收应用于CMAQ模拟可以改善区域低空(2 km以下)的臭氧模拟。

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  • 来源
    《Journal of the air & waste management association》 |2015年第10期|1206-1216|共11页
  • 作者单位

    NOAA Air Resources Laboratory, 5830 University Research Court, College Park, MD 20740, USA,Cooperative Institute for Climate and Satellites, University of Maryland, College Park, MD, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA,Cooperative Institute for Climate and Satellites, University of Maryland, College Park, MD, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA,Cooperative Institute for Climate and Satellites, University of Maryland, College Park, MD, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA,Cooperative Institute for Climate and Satellites, University of Maryland, College Park, MD, USA,Center for Spatial Information Science and Systems, George Mason University, Fairfax, VA, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA,Cooperative Institute for Climate and Satellites, University of Maryland, College Park, MD, USA;

    NOAA Air Resources Laboratory, College Park, MD, USA,Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, People's Republic of China;

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