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Application of physics-based two-grid method and sparse matrix canonical grid method for numerical simulations of emissivities of soils with rough surfaces at microwave frequencies

机译:基于物理学的两网格法和稀疏矩阵规范化网格法在微波频率下粗糙表面土壤发射率数值模拟中的应用

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摘要

The simulations of emissivities from a two-dimensional (2D) wet soil with random rough surfaces are studied with numerical solutions of three-dimensional (3D) Maxwell equations. The wet soils have large permittivity. For media with large permittivities, the surface fields can have large spatial variations on the surface. Thus, a dense discretization of the surface is required to implement the method of moment (MoM) for the surface integral equations. Such a dense discretization is also required to ensure that the emissivity can be calculated to the required accuracy of 0.01 for passive remote sensing applications. It has been shown that the physics-based two-grid method (PBTG) can efficiently compute the accurate surface fields on the dense grid. In this paper, the numerical results are calculated by using the PBTG in conjunction with the sparse-matrix canonical grid method (SMCG). The emissivities are illustrated for random rough surfaces with Gaussian spectrum for different soil moisture conditions. The results are calculated for L- and C-bands using the same physical roughness parameters. The numerical solutions of Maxwell's equations are also compared with the popular H and Q empirical model.
机译:利用三维(3D)Maxwell方程的数值解研究了二维(2D)随机粗糙表面的湿润土壤的发射率模拟。湿土壤的介电常数大。对于介电常数大的介质,表面场在表面上可能具有较大的空间变化。因此,为了实现表面积分方程的矩量法(MoM),需要对表面进行密集的离散化。还需要如此密集的离散化,以确保可以将发射率计算为被动遥感应用所需的0.01精度。已经表明,基于物理学的两网格方法(PBTG)可以有效地计算致密网格上的精确表面场。在本文中,通过使用PBTG和稀疏矩阵规范网格方法(SMCG)来计算数值结果。说明了针对不同土壤湿度条件下具有高斯光谱的随机粗糙表面的发射率。使用相同的物理粗糙度参数计算L波段和C波段的结果。麦克斯韦方程的数值解也与流行的H和Q经验模型进行了比较。

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