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Development and application of a backscatter lidar forward operator for quantitative validation of aerosol dispersion models and future data assimilation

机译:反向散射激光雷达前向算子的开发和应用,用于定量验证气溶胶扩散模型和未来的数据同化

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A new backscatter lidar forward operator was developed which is based on the distinct calculation of the aerosols' backscatter and extinction properties. The forward operator was adapted to the COSMO-ART ash dispersion simulation of the Eyjafjallaj?kull eruption in 2010. While the particle number concentration was provided as a model output variable, the scattering properties of each individual particle type were determined by dedicated scattering calculations. Sensitivity studies were performed to estimate the uncertainties related to the assumed particle properties. Scattering calculations for several types of non-spherical particles required the usage of T-matrix routines. Due to the distinct calculation of the backscatter and extinction properties of the models' volcanic ash size classes, the sensitivity studies could be made for each size class individually, which is not the case for forward models based on a fixed lidar ratio. Finally, the forward-modeled lidar profiles have been compared to automated ceilometer lidar (ACL) measurements both qualitatively and quantitatively while the attenuated backscatter coefficient was chosen as a suitable physical quantity. As the ACL measurements were not calibrated automatically, their calibration had to be performed using satellite lidar and ground-based Raman lidar measurements. A slight overestimation of the model-predicted volcanic ash number density was observed. Major requirements for future data assimilation of data from ACL have been identified, namely, the availability of calibrated lidar measurement data, a scattering database for atmospheric aerosols, a better representation and coverage of aerosols by the ash dispersion model, and more investigation in backscatter lidar forward operators which calculate the backscatter coefficient directly for each individual aerosol type. The introduced forward operator offers the flexibility to be adapted to a multitude of model systems and measurement setups.
机译:基于对气溶胶的反向散射和消光特性的独特计算,开发了一种新的反向散射激光雷达前向算子。该前向算子适用于2010年艾雅菲亚德拉库尔火山喷发的COSMO-ART灰分弥散模拟。虽然将颗粒数浓度作为模型输出变量提供,但通过专用散射计算确定了每种单独颗粒类型的散射特性。进行了敏感性研究,以估计与假定颗粒性质有关的不确定性。几种非球形粒子的散射计算需要使用T矩阵例程。由于对模型的火山灰尺寸类别的反向散射和消光特性进行了独特的计算,因此可以分别针对每个尺寸类别进行灵敏度研究,而基于固定激光雷达比的正向模型则不是这种情况。最后,定性和定量地将前向建模的激光雷达轮廓与自动云高仪激光雷达(ACL)测量进行了比较,同时选择了衰减的反向散射系数作为合适的物理量。由于ACL测量值无法自动校准,因此必须使用卫星激光雷达和基于地面的拉曼激光雷达测量进行校准。观察到模型预测的火山灰数密度略有高估。已经确定了未来对来自ACL的数据进行数据同化的主要要求,即,是否可以使用校准的激光雷达测量数据,用于大气气溶胶的散射数据库,通过灰分扩散模型更好地表示和覆盖气溶胶以及在反向散射激光雷达中进行了更多研究前向运算符,直接为每种单独的气溶胶类型计算后向散射系数。引入的前向运算符提供了适应多种模型系统和测量设置的灵活性。

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