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Bidirectional anisotropic reflectance of snow and sea ice in AVHRR Channel 1 and 2 spectral regions. I. Theoretical analysis

机译:AVHRR通道1和2光谱区域中雪和海冰的双向各向异性反射。一,理论分析

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摘要

The bidirectional reflectance anisotropy in Advanced Very High Resolution Radiometer (AVHRR) Channel 1 and 2 spectral regions for snow- and ice-covered surfaces was investigated using a comprehensive radiative transfer model for the coupled atmosphere, snow, ice, and ocean system. The model has been developed to include surface roughness effects. The importance of the scattering characteristics of snow and the surface roughness of sea ice to the bidirectional reflectance of these surfaces is presented. The modeled anisotropic factor, however, shows less sensitivity to aerosol loading and snow soot contamination than to solar elevation, snow phase function, and ice surface roughness. Results show high anisotropic reflectance factors (ARFs) and different reflectance features for snow and ice surfaces in both the AVHRR Channel 1 and 2 spectral regions. The model-observation comparison indicates that the model is able to predict the general characteristics of the bidirectional reflection of snow and sea ice. The introduction of surface roughness in the model can well explain the extremely strong forward or high anisotropic reflectance of sea ice.
机译:使用用于大气,雪,冰和海洋系统耦合的综合辐射传输模型,研究了超高分辨辐射计(AVHRR)通道1和2光谱区域中冰雪覆盖的表面的双向反射各向异性。该模型已开发为包括表面粗糙度影响。提出了雪的散射特性和海冰的表面粗糙度对这些表面的双向反射的重要性。但是,模型化的各向异性因子显示出对气溶胶负载和雪烟污染的敏感性低于对太阳高度,雪相函数和冰面粗糙度的敏感性。结果显示,AVHRR通道1和2光谱区域中的雪和冰表面具有较高的各向异性反射系数(ARF)和不同的反射特征。模型观测的比较表明,该模型能够预测雪和海冰双向反射的一般特征。在模型中引入表面粗糙度可以很好地解释海冰的极强正向或高各向异性反射率。

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