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Accuracy assessments of aerosol optical properties retrieved from Aerosol Robotic Network (AERONET) Sun and sky radiance measurements

机译:从气溶胶机器人网络(AERONET)获得的气溶胶光学特性的准确性评估,太阳和天空辐射度测量

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Sensitivity studies are conducted regarding aerosol optical property retrieval from radiances measured by ground-based Sun-sky scanning radiometers of the Aerosol Robotic Network (AERONET). These studies focus on testing a new inversion concept for simultaneously retrieving aerosol size distribution, complex refractive index, and single-scattering albedo from spectral measurements of direct and diffuse radiation. The perturbations of the inversion resulting from random errors, instrumental offsets, and known uncertainties in the atmospheric radiation model are analyzed. Sun or sky channel miscalibration, inaccurate azimuth angle pointing during sky radiance measurements, and inaccuracy in accounting for surface reflectance are considered as error sources. The effects of these errors on the characterization of three typical and optically distinct aerosols with bimodal size distributions (weakly absorbing water-soluble aerosol, absorbing biomass-burning aerosol, and desert dust) are considered. The aerosol particles are assumed in the retrieval to be polydispersed homogeneous spheres with the same complex refractive index. Therefore we also examined how inversions with such an assumption bias the retrievals in the case of nonspherical dust aerosols and in the case of externally or internally mixed spherical particles with different refractive indices. The analysis shows successful retrieval of all aerosol characteristics (size distribution, complex refractive index, and single-scattering albedo), provided the inversion includes the data combination of spectral optical depth together with sky radiances in the full solar almucantar (with angular coverage of scattering angles up to 100 degrees or more). The retrieval accuracy is acceptable for most remote sensing applications even in the presence of rather strong systematic or random uncertainties in the measurements. The major limitations relate to the characterization of low optical depth situations for all aerosol types, where high relative errors may occur in the direct radiation measurements of aerosol optical depth. Also, the results of tests indicate that a decrease of angular coverage of scattering (scattering angles of 75 degrees or less) in the sky radiance results in the loss of practical information about refractive index. Accurate azimuth angle pointing is critical for the characterization of dust. Scattering by nonspherical dust particles requires special analysis, whereby approximation of the aerosol by spheres allows us to derive single-scattering albedo by inverting spectral optical depth together with sky radiances in the full solar almucantar. Inverting sky radiances measured in the first 40 degrees scattering angle only, where nonspherical effects are minor, results in accurate retrievals of aerosol size distributions of nonspherical particles. [References: 47]
机译:进行了有关从气溶胶机器人网络(AERONET)的地基Sun-sky扫描辐射计测量的辐射度中获取气溶胶光学特性的敏感性研究。这些研究的重点是测试新的反演概念,该概念可同时从直接辐射和漫射辐射的光谱测量结果中检索气溶胶尺寸分布,复折射率和单散射反照率。分析了由随机误差,仪器失调和大气辐射模型中的已知不确定性引起的反演扰动。太阳或天空通道校准不正确,天空辐射测量期间方位角指向不正确以及表面反射率计算不准确均被视为误差源。考虑了这些误差对具有双峰尺寸分布(弱吸收水溶性气溶胶,吸收燃烧生物质的气溶胶和沙漠尘埃)的三种典型且光学上不同的气溶胶的特性的影响。气溶胶颗粒被认为是具有相同复折射率的多分散均匀球体。因此,我们还研究了在非球形粉尘气溶胶的情况下以及在具有不同折射率的外部或内部混合球形颗粒的情况下,采用这种假设进行的反演如何偏向检索。该分析显示成功获取了所有气溶胶特征(尺寸分布,复折射率和单散射反照率),条件是反演包括光谱光深的数据组合以及整个太阳铝al石中的天空辐射(散射角覆盖)角度最大为100度或更高)。即使在测量中存在相当强的系统性或随机性不确定性的情况下,对于大多数遥感应用而言,检索精度也是可以接受的。主要局限性涉及对所有气溶胶类型的低光学深度情况的表征,其中在气溶胶光学深度的直接辐射测量中可能会出现较高的相对误差。此外,测试结果表明,天空辐射中散射角覆盖范围(散射角为75度或更小)的减小会导致丢失有关折射率的实用信息。准确的方位角指向对于粉尘的表征至关重要。非球形尘埃颗粒的散射需要特殊的分析,通过球体对气溶胶的近似,我们可以通过将光谱光学深度与整个太阳铝制can斗中的天空辐射率倒置来得出单散射反照率。仅在最初的40度散射角(非球面影响较小)中测量的倒置天空辐射会导致准确检索非球面颗粒的气溶胶尺寸分布。 [参考:47]

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