Kim Man-Hae, Omar Ali H, Tackett Jason L, Vaughan Mark A, Winker David M, Trepte Charles R, Hu Yongxiang, Liu Zhaoyan, Poole Lamont R, Pitts Michael C, Kar Jayanta, Magill Brian E
NASA Postdoctoral Program (USRA), Hampton, VA, USA.
NASA Langley Research Center, Hampton, VA, USA.
Atmos Meas Tech. 2018;11(11):6107-6135. doi: 10.5194/amt-11-6107-2018.
The Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) version 4.10 (V4) level 2 aerosol data products, released in November 2016, include substantial improvements to the aerosol subtyping and lidar ratio selection algorithms. These improvements are described along with resulting changes in aerosol optical depth (AOD). The most fundamental change in V4 level 2 aerosol products is a new algorithm to identify aerosol subtypes in the stratosphere. Four aerosol subtypes are introduced for the stratospheric aerosols: polar stratospheric aerosol (PSA), volcanic ash, sulfate/other, and smoke. The tropospheric aerosol subtyping algorithm was also improved by adding the following enhancements: (1) all aerosol subtypes are now allowed over polar regions, whereas the version 3 (V3) algorithm allowed only clean continental and polluted continental aerosols; (2) a new "dusty marine" aerosol subtype is introduced, representing mixtures of dust and marine aerosols near the ocean surface; and (3) the "polluted continental" and "smoke" subtypes have been renamed "polluted continental/smoke" and "elevated smoke", respectively. V4 also revises the lidar ratios for clean marine, dust, clean continental, and elevated smoke subtypes. As a consequence of the V4 updates, the mean 532 nm AOD retrieved by CALIOP has increased by 0.044 (0.036) or 52 % (40 %) for nighttime (daytime). Lidar ratio revisions are the most influential factor for AOD changes from V3 to V4, especially for cloud-free skies. Preliminary validation studies show that the AOD discrepancies between CALIOP and AERONET/MODIS (ocean) are reduced in V4 compared to V3.
2016年11月发布的正交极化云和气溶胶激光雷达(CALIOP)4.10版(V4)二级气溶胶数据产品,在气溶胶亚型分类和激光雷达比值选择算法方面有了实质性改进。这些改进以及由此导致的气溶胶光学厚度(AOD)变化都有详细描述。V4二级气溶胶产品最根本的变化是一种用于识别平流层气溶胶亚型的新算法。平流层气溶胶引入了四种气溶胶亚型:极地平流层气溶胶(PSA)、火山灰、硫酸盐/其他以及烟雾。对流层气溶胶亚型分类算法也通过以下改进得到了优化:(1)现在极地地区允许所有气溶胶亚型,而3版(V3)算法只允许清洁大陆型和气团污染型气溶胶;(2)引入了一种新的“沙尘海洋”气溶胶亚型,代表海洋表面附近沙尘与海洋气溶胶的混合物;(3)“气团污染型”和“烟雾”亚型分别重新命名为“气团污染/烟雾”和“高空烟雾”。V4还修订了清洁海洋、沙尘、清洁大陆和高空烟雾亚型的激光雷达比值。V4更新的结果是,CALIOP反演的532nm平均AOD在夜间(白天)增加了0.044(0.036),即增加了52%(40%)。激光雷达比值的修订是AOD从V3到V4变化的最主要影响因素,尤其是在无云天空条件下。初步验证研究表明,与V3相比,V4中CALIOP与AERONET/MODIS(海洋)之间的AOD差异有所减小。