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LIDAR versus satellite-measured optical thickness of a wildfire aerosol

机译:LIDAR与野火气溶胶的卫星测量光学厚度

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A dual UV, Rayleighitrogen Raman LIDAR system was developed for the purpose of profiling aerosols at vertical ranges between 0.025 and 5 km. The 355 nm LIDAR was operated in El Segundo, California during June and July 2008, during a period of intense wildfire activity in Northern California. From the two independent measurements we calculated the particle backscatter, and using the humidity-corrected LIDAR backscatter-to-extinction ratios given by Ackermann[1] we calculated aerosol optical thickness (AOT) profiles. Preliminary validation studies revealed that under most conditions the calculated LIDAR AOT data agreed with total AOT measured from a collocated sun photometer, except for cases when high-altitude smoke from wildfires was present. To account for high-altitude smoke, a two-layer atmospheric model was assumed, where the lower layer's AOT was calculated using the backscatter-to-extinction method and the high-altitude AOT was found through direct attenuation of the Raman signal. A comparison of AOT measurements from the ground-based LIDAR and the MODIS (Aqua and Terra) overpasses was then performed during the peak period of transport of smoke from Northern California, between 19 June 2008 and 2 July 2008. While the LIDAR and Sun Photometer were found to be in good agreement, it was found that the MODIS overpasses consistently indicated a larger AOT.
机译:开发了双紫外线,瑞利/氮拉曼激光雷达系统,用于在0.025至5 km的垂直范围内对气溶胶进行轮廓分析。 355 nm激光雷达于2008年6月至2008年7月在加利福尼亚州的El Segundo进行了操作,当时加利福尼亚北部发生了强烈的野火活动。根据两次独立的测量,我们计算了粒子的反向散射,并使用Ackermann [1]给出的经湿度校正的LIDAR反向散射与消光比,计算出了气溶胶光学厚度(AOT)曲线。初步的验证研究表明,在大多数情况下,计算出的LIDAR AOT数据与从并置的太阳光度计测得的总AOT一致,但存在野火的高空烟气的情况除外。为了解决高空烟雾问题,假设采用两层大气模型,其中使用反向散射消光方法计算了下层的AOT,并通过直接拉曼信号衰减发现了高空AOT。然后,在2008年6月19日至2008年7月2日从北加利福尼亚州运送烟雾的高峰期间,对来自地面LIDAR和MODIS(Aqua和Terra)立交桥的AOT测量结果进行了比较。如果发现两者之间具有良好的一致性,则发现MODIS立交桥始终表明AOT较大。

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