He Jing-Jing, He Si-Yuan, Zhu Guo-Qiang, Zhu Ling-Kun
Opt Express. 2021 Oct 11;29(21):33642-33664. doi: 10.1364/OE.435468.
Aiming to determine the scattered estimation of complex and electrically large targets coated with the uniaxial electric anisotropic medium (UEAM) from a distributed excitation source, the demanding study is simplified by constructing the physical optics (PO) architecture which consists of three aspects, the discrete facet modeling, the tangent plane approximation, and the scattering of an infinite PEC plate coated with the UEAM based on point-source excitation, including the electric and magnetic dipole. We depict the outer surface of an electrically large scatterer as the constitution of countless tiny triangular facets. From the tangent plane approximation employed in the PO method, the scattered fields of any discretized facet induced by the equivalent electromagnetic currents (EECs) can be further evaluated as the surface fields of an infinite UEAM-coated PEC slab. Therefore, the rigorous solution of the dyadic Green's function (DGFs) for an infinite anisotropic-medium-coated PEC plate under point-source incidence is computed first. Moreover, characterizing the ray propagation process of the plane wave spectrum, the asymptotic technique of the saddle point is employed to obtain the scattered ray field in the spatial domain. Finally, the total scattered fields are obtained by the field superposition of the overall illuminated facets under point-source excitation. Compared with the reference solution, the proposed method is validated, and the simulation results of the representative shapes coated with the UEAM layer from a point source are presented.
为了确定从分布式激励源对涂覆单轴电各向异性介质(UEAM)的复杂电大目标的散射估计,通过构建物理光学(PO)架构简化了这项具有挑战性的研究,该架构由三个方面组成:离散面元建模、切平面近似以及基于点源激励(包括电偶极子和磁偶极子)的涂覆UEAM的无限大理想导电平面(PEC)板的散射。我们将电大散射体的外表面描述为由无数微小三角形面元组成。根据PO方法中采用的切平面近似,由等效电磁流(EEC)引起的任何离散面元的散射场可进一步评估为无限大涂覆UEAM的PEC平板的表面场。因此,首先计算了点源入射下无限大各向异性介质涂覆PEC板的并矢格林函数(DGF)的严格解。此外,通过表征平面波谱的射线传播过程,采用鞍点渐近技术在空间域中获得散射射线场。最后,通过点源激励下所有照明面元的场叠加得到总散射场。与参考解相比,验证了所提方法的有效性,并给出了点源激励下涂覆UEAM层的代表性形状的仿真结果。