污染板的辐射传递模型:实验验证

F. Andrieu, F. Schmidt, B. Schmitt, S. Dout'e, O. Brissaud
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引用次数: 3

摘要

本文介绍了一组不同水冰样品的光谱测量结果,并与近似辐射传输模型进行了比较。实验是使用布里绍德等人(2004年)中描述的光谱辐射测量仪完成的。辐射传递模型假设第二界面之后的通量是各向同性的,Andrieu等人(2015)对此进行了充分的描述。进行了两种实验。首先,在高角分辨率下,在波长$1.5\,\mbox{\mu m}$处,冰表现为非常吸收的介质,仔细研究了镜面光斑。其次,在不同的几何形状下采样双向反射率,包括在$0.8\,\mbox{\mu m}$到$2.0\,\mbox{\mu m}$的61个波长上的低相位角。为了验证模型,我们做了一个定性试验来证明通量的相对各向同性。我们还使用贝叶斯反演方法进行了定量评估,以便仅从辐射测量中估计参数(例如样品厚度,表面粗糙度)。在检索参数和直接独立测量之间的简单比较使我们能够验证模型。我们开发了一种创新的贝叶斯反演方法来定量估计参数的不确定性,避免了通常的慢蒙特卡罗方法。首先建立查找表,然后搜索最佳拟合并计算后验密度概率函数。结果表明,该模型能较好地再现水冰板的光谱特征,并能较好地再现反射光斑。此外,模型的不同参数与独立测量是兼容的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Radiative transfer model for contaminated slabs : experimental validations
This article presents a set of spectro-goniometric measurements of different water ice samples and the comparison with an approximated radiative transfer model. The experiments were done using the spectro-radiogoniometer described in Brissaud et al. (2004). The radiative transfer model assumes an isotropization of the flux after the second interface and is fully described in Andrieu et al. (2015). Two kind of experiments were conducted. First, the specular spot was closely investigated, at high angular resolution, at the wavelength of $1.5\,\mbox{\mu m}$, where ice behaves as a very absorbing media. Second, the bidirectional reflectance was sampled at various geometries, including low phase angles on 61 wavelengths ranging from $0.8\,\mbox{\mu m}$ to $2.0\,\mbox{\mu m}$. In order to validate the model, we made a qualitative test to demonstrate the relative isotropization of the flux. We also conducted quantitative assessments by using a bayesian inversion method in order to estimate the parameters (e.g. sample thickness, surface roughness) from the radiative measurements only. A simple comparison between the retrieved parameters and the direct independent measurements allowed us to validate the model. We developed an innovative bayesian inversion approach to quantitatively estimate the uncertainties on the parameters avoiding the usual slow Monte Carlo approach. First we built lookup tables, and then searched the best fits and calculated a posteriori density probability functions. The results show that the model is able to reproduce the spectral behavior of water ice slabs, as well as the specular spot. In addition, the different parameters of the model are compatible with independent measurements.
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