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Development of a Ground Based Remote Sensing Approach for Direct Evaluation of Aerosol-Cloud Interaction

机译:直接评估气溶胶-云相互作用的基于地面的遥感方法的开发

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The possible interaction and modification of cloud properties due to aerosols is one of the most poorly understood mechanisms within climate studies, resulting in the most significant uncertainty as regards radiation budgeting. In this study, we explore direct ground based remote sensing methods to assess the Aerosol-Cloud Indirect Effect directly, as space-borne retrievals are not directly suitable for simultaneous aerosol/cloud retrievals. To illustrate some of these difficulties, a statistical assessment of existing multispectral imagers on geostationary (e.g., GOES)/Moderate Resolution Imaging Spectroradiometer (MODIS) satellite retrievals of the Cloud Droplet Effective Radius (Reff) showed significant biases especially at larger solar zenith angles, further motivating the use of ground based remote sensing approaches. In particular, we discuss the potential of using a combined Microwave Radiometer (MWR)—Multi-Filter Rotating Shadowband Radiometer (MFRSR) system for real-time monitoring of Cloud Optical Depth (COD) and Cloud Droplet Effective Radius (Reff), which are combined with aerosol vertical properties from an aerosol lidar. An iterative approach combining the simultaneous observations from MFRSR and MWR are used to retrieve the COD and Reff for thick cloud cases and are extensively validated using the DoE Southern Great Plains (SGP) retrievals as well as regression based parameterized model retrievals. In addition, we account for uncertainties in background aerosol, surface albedo and the combined measurement uncertainties from the MWR and MFRSR in order to provide realistic uncertainty estimates, which is found to be ~10% for the parameter range of interest in Aerosol-Cloud Interactions. Finally, we analyze a particular case of possible aerosol-cloud interaction described in the literature at the SGP site and demonstrate that aerosol properties obtained at the surface can lead to inconclusive results in comparison to lidar-derived aerosol properties near the cloud base.
机译:气溶胶引起的云特性可能相互作用和改变是气候研究中最难理解的机制之一,导致辐射预算方面的不确定性最大。在这项研究中,我们探索直接基于地面的遥感方法来直接评估气溶胶-云的间接效应,因为星载获取不直接适合同时进行气溶胶/云的获取。为了说明其中的一些困难,对现有的多光谱成像仪进行的对地静止(例如,GOES)/中等分辨率成像光谱仪(MODIS)卫星云滴有效半径(R eff )检索的统计评估显示出了重要意义尤其是在较大的太阳天顶角时会产生偏差,进一步激励了基于地面的遥感方法的使用。特别是,我们讨论了使用组合式微波辐射仪(MWR)-多滤光片旋转阴影带辐射仪(MFRSR)系统实时监测云光学深度(COD)和云滴有效半径(R ),并结合了来自气溶胶激光雷达的气溶胶垂直特性。结合MFRSR和MWR的同时观测值的迭代方法用于检索厚云情况下的COD和R eff ,并通过美国能源部南部大平原(SGP)检索以及基于回归的方法得到了广泛验证。参数化模型检索。此外,我们考虑了背景气溶胶,表面反照率的不确定性以及来自MWR和MFRSR的组合测量不确定性,以便提供现实的不确定性估计值,对于气溶胶-云相互作用的感兴趣参数范围,发现该不确定性约为10% 。最后,我们分析了SGP站点上文献中描述的可能的气溶胶-云相互作用的特殊情况,并证明与云底附近的激光雷达衍生气溶胶特性相比,在表面获得的气溶胶特性可能导致不确定的结果。

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