Capozzoli Amedeo, Curcio Claudio, Liseno Angelo, Savarese Salvatore
Opt Express. 2014 Nov 3;22(22):26680-95. doi: 10.1364/OE.22.026680.
We develop an approach for the fast and accurate determination of geometrical optics solutions to Maxwell's equations in inhomogeneous 2D media and for TM polarized electric fields. The eikonal equation is solved by the fast marching method. Particular attention is paid to consistently discretizing the scatterers' boundaries and matching the discretization to that of the computational domain. The ray tracing is performed, in a direct and inverse way, by using a technique introduced in computer graphics for the fast and accurate generation of textured images from vector fields. The transport equation is solved by resorting only to its integral form, the transport of polarization being trivial for the considered geometry and polarization. Numerical results for the plane wave scattering of two perfectly conducting circular cylinders and for a Luneburg lens prove the accuracy of the algorithm. In particular, it is shown how the approach is capable of properly accounting for the multiple scattering occurring between the two metallic cylinders and how inverse ray tracing should be preferred to direct ray tracing in the case of the Luneburg lens.
我们开发了一种方法,用于快速准确地确定非均匀二维介质中麦克斯韦方程组的几何光学解以及TM极化电场的解。通过快速行进法求解程函方程。特别注意一致地离散散射体的边界,并使离散化与计算域的离散化相匹配。利用计算机图形学中引入的一种技术,以直接和逆的方式进行光线追踪,该技术用于从矢量场快速准确地生成纹理图像。仅通过其积分形式求解输运方程,在所考虑的几何形状和极化情况下,极化的输运很简单。两个理想导电圆柱的平面波散射以及一个伦伯格透镜的数值结果证明了该算法的准确性。特别是,展示了该方法如何能够正确考虑两个金属圆柱之间发生的多次散射,以及在伦伯格透镜的情况下,逆光线追踪应优于直接光线追踪。