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Modification of Local Urban Aerosol Properties by Long-Range Transport of Biomass Burning Aerosol

机译:通过燃烧气溶胶的远程运输燃气燃气溶解的地方城市气溶胶特性的改变

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摘要

During August 2016, a quasi-stationary high-pressure system spreading over Central and North-Eastern Europe, caused weather conditions that allowed for 24/7 observations of aerosol optical properties by using a complex multi-wavelength PollyXT lidar system with Raman, polarization and water vapour capabilities, based at the European Aerosol Research Lidar Network (EARLINET network) urban site in Warsaw, Poland. During 24–30 August 2016, the lidar-derived products (boundary layer height, aerosol optical depth, Ångström exponent, lidar ratio, depolarization ratio) were analysed in terms of air mass transport (HYSPLIT model), aerosol load (CAMS data) and type (NAAPS model) and confronted with active and passive remote sensing at the ground level (PolandAOD, AERONET, WIOS-AQ networks) and aboard satellites (SEVIRI, MODIS, CATS sensors). Optical properties for less than a day-old fresh biomass burning aerosol, advected into Warsaw’s boundary layer from over Ukraine, were compared with the properties of long-range transported 3–5 day-old aged biomass burning aerosol detected in the free troposphere over Warsaw. Analyses of temporal changes of aerosol properties within the boundary layer, revealed an increase of aerosol optical depth and Ångström exponent accompanied by an increase of surface PM10 and PM2.5. Intrusions of advected biomass burning particles into the urban boundary layer seem to affect not only the optical properties observed but also the top height of the boundary layer, by moderating its increase.
机译:2016年8月期间,通过使用具有拉曼,极化和极化的复杂多波长Potlywer Lidar系统,散布在中央和东欧的准静止高压系统,导致允许24/7观察气溶胶光学特性的天气条件。水蒸气能力,位于波兰华沙欧洲气溶胶研究激光雷达网络(Earlinet网络)城市遗址。在2016年8月24日至30日,在空气质量运输(HySplit模型),气溶胶载量(CAMS数据)和类型(Naape Model)并面对地面(Polandaod,AeroNet,Wios-AQ网络)和船尾卫星(Seviri,Modis,Cats传感器)的主动和被动遥感。光学性质少于一天古老的新鲜生物量燃烧气溶胶,从乌克兰进入华沙的边界层,与远程运输的3-5天老年老年生物量燃烧气溶胶的燃烧气雾剂的特性进行了比较。边界层气溶胶特性的时间变化分析,揭示了气溶胶光学深度的增加,Ångström指数伴随着表面PM10和PM2.5的增加。方正生物质燃烧颗粒进入城市边界层的入侵似乎不仅影响了所观察到的光学性质,而且通过调节其增加来影响边界层的顶部高度。

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