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Modeling Active Microwave Remote Sensing of Snow Using Dense Media Radiative Transfer (DMRT) Theory With Multiple-Scattering Effects

机译:使用具有多重散射效应的重介质辐射传输(DMRT)理论对积雪的主动微波遥感建模

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Dense media radiative transfer (DMRT) theory is used to study the multiple-scattering effects in active microwave remote sensing. Simplified DMRT phase matrices are obtained in the 1-2 frame. The simplified expressions facilitate solutions of the DMRT equations and comparisons with other phase matrices. First-order, second-order, and full multiple-scattering solutions of the DMRT equations are obtained. To solve the DMRT equation, we decompose the diffuse intensities into Fourier series in the azimuthal direction. Each harmonic is solved by the eigen-quadrature approach. The model is applied to the active microwave remote sensing of terrestrial snow. Full multiple-scattering effects are important as the optical thickness for snow at frequencies above 10 GHz often exceed unity. The results are illustrated as a function of frequency, incidence angle, and snow depth. The results show that cross polarization for the case of densely packed spheres can be significant and can be merely 6 to 8 dB below copolarization. The magnitudes of the cross polarization are consistent with the experimental observations. The results show that the active 13.5-GHz backscattering coefficients still have significant sensitivity to snow thickness even for snow thickness exceeding 1 m
机译:稠密介质辐射传输理论(DMRT)用于研究有源微波遥感中的多重散射效应。在1-2帧中获得简化的DMRT相位矩阵。简化的表达式便于DMRT方程的解以及与其他相位矩阵的比较。获得了DMRT方程的一阶,二阶和完全多重散射解。为了求解DMRT方程,我们将散射强度沿方位角方向分解为傅立叶级数。每个谐波都通过本征正交方法求解。该模型应用于地面雪的有源微波遥感。充分的多重散射效应非常重要,因为在10 GHz以上的频率下,雪的光学厚度通常会超过1。结果显示为频率,入射角和积雪深度的函数。结果表明,对于密集堆积的球体,交叉极化可能很明显,并且仅比共极化低6至8 dB。交叉极化的幅度与实验观察结果一致。结果表明,即使超过1 m的积雪,有效的13.5 GHz反向散射系数仍然对积雪具有显着的敏感性。

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